Annemie Bogaerts

Annemie Bogaerts

Universiteit Antwerpen

H-index: 100

Europe-Belgium

Annemie Bogaerts Information

University

Universiteit Antwerpen

Position

Full professor Chemistry

Citations(all)

39475

Citations(since 2020)

22431

Cited By

25424

hIndex(all)

100

hIndex(since 2020)

74

i10Index(all)

551

i10Index(since 2020)

392

Email

University Profile Page

Universiteit Antwerpen

Annemie Bogaerts Skills & Research Interests

plasma chemistry

CO2 conversion

plasma catalysis

plasma medicine

modeling

Top articles of Annemie Bogaerts

NH3 decomposition for H2 production by thermal and plasma catalysis using bimetallic catalysts

Authors

Shengyan Meng,Shangkun Li,Shuaiqi Sun,Annemie Bogaerts,Yi Liu,Yanhui Yi

Journal

Chemical Engineering Science

Published Date

2024/1/5

Plasma catalysis has emerged as a promising approach for driving thermodynamically unfavorable chemical reactions. Nevertheless, comprehending the mechanisms involved remains a challenge, leading to uncertainty about whether the optimal catalyst in plasma catalysis aligns with that in thermal catalysis. In this research, we explore this question by studying monometallic catalysts (Fe, Co, Ni and Mo) and bimetallic catalysts (Fe-Co, Mo-Co, Fe-Ni and Mo-Ni) in both thermal catalytic and plasma catalytic NH3 decomposition. Our findings reveal that the Fe-Co bimetallic catalyst exhibits the highest activity in thermal catalysis, the Fe-Ni bimetallic catalyst outperforms others in plasma catalysis, indicating a discrepancy between the optimal catalysts for the two catalytic modes in NH3 decomposition. Comprehensive catalyst characterization, kinetic analysis, temperature program surface reaction experiments and …

Electrical Stability and Performance of a Nitrogen–Oxygen Atmospheric Pressure Gliding Arc Plasma

Authors

Filippo Manaigo,Omid Samadi Bahnamiri,Abhyuday Chatterjee,Adriano Panepinto,Arnaud Krumpmann,Matthieu Michiels,Annemie Bogaerts,Rony Snyders

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2024/3/16

Nonthermal plasmas are currently being studied as a green alternative to the Haber–Bosch process, which is, today, the dominant industrial process allowing for the fixation of nitrogen and, as such, a fundamental component for the production of nitrogen-based industrial fertilizers. In this context, the gliding arc plasma (GAP) is considered a promising choice among nonthermal plasma options. However, its stability is still a key parameter to ensure industrial transfer of the technology. Nowadays, the conventional approach to stabilize this plasma process is to use external resistors. Although this indeed allows for an enhancement of the plasma stability, very little is reported about how it impacts the process efficiency, both in terms of NOx yield and energy cost. In this work, this question is specifically addressed by studying a DC-powered GAP utilized for nitrogen fixation into NOx at atmospheric pressure stabilized by …

Accurate Reaction Probabilities for Translational Energies on Both Sides of the Barrier of Dissociative Chemisorption on Metal Surfaces

Authors

Nick Gerrits,Bret Jackson,Annemie Bogaerts

Journal

The Journal of Physical Chemistry Letters

Published Date

2024/2/28

Molecular dynamics simulations are essential for a better understanding of dissociative chemisorption on metal surfaces, which is often the rate-controlling step in heterogeneous and plasma catalysis. The workhorse quasi-classical trajectory approach ubiquitous in molecular dynamics is able to accurately predict reactivity only for high translational and low vibrational energies. In contrast, catalytically relevant conditions generally involve low translational and elevated vibrational energies. Existing quantum dynamics approaches are intractable or approximate as a result of the large number of degrees of freedom present in molecule–metal surface reactions. Here, we extend a ring polymer molecular dynamics approach to fully include, for the first time, the degrees of freedom of a moving metal surface. With this approach, experimental sticking probabilities for the dissociative chemisorption of methane on Pt(111) are …

Plasma-Catalytic Direct Oxidation of Methane to Methanol Over Cu-Mor: Revealing the Zeolite-Confined Cu2+ Active Sites

Authors

Huan Lv,Shengyan Meng,Zhaolun Cui,Shangkun Li,Dongxing Li,Xiaoxia Gao,Hongchen Guo,Annemie Bogaerts,Yanhui Yi

Journal

Available at SSRN 4813112

Published Date

2024/4/10

Efficient methane conversion to methanol remains a significant challenge in chemical industry. This study investigates the direct oxidation of methane to methanol under mild conditions, employing a synergy of non-thermal plasma and Cu-MOR (Copper-Mordenite) catalysts. Catalytic tests demonstrate that the Cu-MOR IE-3 catalyst (ie, prepared by three cycles of ion exchange) exhibits superior catalytic performance (with 51% methanol selectivity and 7.9% methane conversion). Conversely, the Cu-MOR catalysts prepared via wetness impregnation tend to over-oxidize CH4 to CO and CO2. Through systematic catalyst characterizations (XRD, TPR, UV-Vis, HRTEM, XPS), we elucidate that ion exchange mainly leads to the formation of zeolite-confined Cu2+ species, while wetness impregnation predominantly results in CuO particles. Based on the catalytic performance, catalyst characterizations and in-situ FTIR spectra, we conclude that zeolite-confined Cu2+ species serve as the active sites for plasma-catalytic direct oxidation of methane to methanol.

Modelling the dynamics of hydrogen synthesis from methane in nanosecond‐pulsed plasmas

Authors

Eduardo Morais,Annemie Bogaerts

Journal

Plasma Processes and Polymers

Published Date

2024/1

A chemical kinetics model was developed to characterise the gas‐phase dynamics of H2 production in nanosecond‐pulsed CH4 plasmas. Pulsed behaviour was observed in the calculated electric field, electron temperature and species densities at all pressures. The model agrees reasonably with experimental results, showing CH4 conversion at 30% and C2H2 and H2 as major products. The underlying mechanisms in CH4 dissociation and H2 formation were analysed, highlighting the large contribution of vibrationally excited CH4 and H2 to coupling energy from the plasma into gas‐phase heating, and revealing that H2 synthesis is not affected by applied pressure, with selectivity remaining unchanged at ~42% in the 1–5 bar range.

Coupling the COST reference plasma jet to a microfluidic device: a computational study

Authors

Julien Bissonnette-Dulude,Pepijn Heirman,Sylvain Coulombe,Annemie Bogaerts,Thomas Gervais,Stephan Reuter

Journal

Plasma Sources Science and Technology

Published Date

2024/1/4

The use of microfluidic devices in the field of plasma-liquid interaction can unlock unique possibilities to investigate the effects of plasma-generated reactive species for environmental and biomedical applications. So far, very little simulation work has been performed on microfluidic devices in contact with a plasma source. We report on the modelling and computational simulation of physical and chemical processes taking place in a novel plasma-microfluidic platform. The main production and transport pathways of reactive species both in plasma and liquid are modelled by a novel modelling approach that combines 0D chemical kinetics and 2D transport mechanisms. This combined approach, applicable to systems where the transport of chemical species occurs in unidirectional flows at high Péclet numbers, decreases calculation times considerably compared to regular 2D simulations. It takes advantage of the low …

Feasibility study of a small-scale fertilizer production facility based on plasma nitrogen fixation

Authors

Filippo Manaigo,Kevin Rouwenhorst,Annemie Bogaerts,Rony Snyders

Journal

Energy Conversion and Management

Published Date

2024/2/15

Over the last century, the nitrogen fertilizer production sector has been dominated by the Haber-Bosch process, used to convert inert N 2 into more reactive NH 3. This process, coupled with steam methane reforming for H 2 production, currently represents the cheapest and most efficient technology in the sector but is recognized as environmentally impacting. Recently, non-thermal plasma-based nitrogen fixation gained some interest as its theoretical minimum energy cost for N 2 fixation into NO and NO 2 has been estimated to be 0.2 MJ/mol N, lower than the current best available Haber-Bosch-based technology energy cost of 0.49 MJ/mol N and because this technology allows for implementation in small-scaled facilities with modest impact on the cost of the final product. Thus far, a lower energy cost than the Haber-Bosch process has however not been reached yet. Therefore, it is important to evaluate if the benefit …

Plasma catalysis in ammonia production and decomposition: Use it, or lose it?

Authors

Yury Gorbanev,Igor Fedirchyk,Annemie Bogaerts

Published Date

2024/3/29

The combination of plasma with catalysis for the synthesis and decomposition of NH3 is an attractive route to the production of carbon-neutral fertiliser and energy carrier, and its conversion into H2. Recent years have seen fast developments in the field of plasma-catalytic NH3 life-cycle. This work summarises the most recent advances in plasma-catalytic and related NH3-focussed processes, identifies some of the most important discoveries, and addresses plausible strategies for future developments in plasma-based NH3 technology.

Importance of plasma discharge characteristics in plasma catalysis: Dry reforming of methane vs. ammonia synthesis

Authors

Robin De Meyer,Yury Gorbanev,Radu-George Ciocarlan,Pegie Cool,Sara Bals,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2024/5/15

Plasma catalysis is a rapidly growing field, often employing a packed-bed dielectric barrier discharge plasma reactor. Such dielectric barrier discharges are complex, especially when a packing material (e.g., a catalyst) is introduced in the discharge volume. Catalysts are known to affect the plasma discharge, though the underlying mechanisms influencing the plasma physics are not fully understood. Moreover, the effect of the catalysts on the plasma discharge and its subsequent effect on the overall performance is often overlooked. In this work, we deliberately design and synthesize catalysts to affect the plasma discharge in different ways. These Ni or Co alumina-based catalysts are used in plasma-catalytic dry reforming of methane and ammonia synthesis. Our work shows that introducing a metal to the dielectric packing can affect the plasma discharge, and that the distribution of the metal is crucial in this regard …

Upscaling Plasma-Based CO2 Conversion: Case Study of a Multi-Reactor Gliding Arc Plasmatron

Authors

Colin O’Modhrain,Georgi Trenchev,Yury Gorbanev,Annemie Bogaerts

Journal

ACS Engineering Au

Published Date

2024/2/14

Atmospheric pressure plasmas have shifted in recent years from being a burgeoning research field in the academic setting to an actively investigated technology in the chemical, oil, and environmental industries. This is largely driven by the climate change mitigation efforts, as well as the evident pathways of value creation by converting greenhouse gases (such as CO2) into useful chemical feedstock. Currently, most high technology readiness level (TRL) plasma-based technologies are based on volumetric and power-based scaling of thermal plasma systems, which results in large capital investment and regular maintenance costs. This work investigates bringing a quasi-thermal (so-called “warm”) plasma setup, namely, a gliding arc plasmatron, from a lab-scale to a pilot-scale capacity with an increase in throughput capacity by a factor of 10. The method of scaling is the parallelization of plasmatron reactors within …

Capturing the heterogeneity of the pancreatic ductal adenocarcinoma tumor microenvironment: novel triple co-culture spheroids for drug screening and angiogenic evaluation

Authors

Ruben Verloy,Angela Privat-Maldonado,Jonas Van Audenaerde,Sophie Rovers,Hannah Zaryouh,Jorrit De Waele,Christophe Deben,Evelien Smits,Annemie Bogaerts

Published Date

2024/1/2

BackgroundPancreatic ductal adenocarcinoma (PDAC) poses a significant health threat with poor response to current treatment options. The desmoplastic reaction, characteristic of PDAC, hinders therapeutic efficacy and emphasizes the need for novel in vitro models to study the complex tumor microenvironment and increase translatability. Three-dimensional in vitro co-culture models with clinically relevant numbers of cancer-associated fibroblasts and endothelial cells are still lacking and lead to failure of clinical trials and low improvement of patient survival.MethodsMiaPaCa-2 and BxPC-3 cancer cell lines, RLT-PSC and hPSC21 pancreatic stellate cell lines and the endothelial cell line HMEC-1 were seeded in ultra-low-attachment round-bottomed plates to form triple co-culture spheroids. A growth assay including all cell lines was performed to evaluate if DMEM or MCDB131 is most ideal for spheroid formation and culturing. Multi-color flow cytometry was used to quantify cell populations after three days of spheroid formation to optimize the seeding ratios. Drug response profiles of mono-culture and triple co-culture spheroids were made using a cell viability assay. Finally, a tube formation assay with spheroid-conditioned medium was performed to showcase the potential of our model for angiogenic studies.ResultsWe developed a panel of high-throughput triple co-culture spheroid models of pancreatic cancer cells, pancreatic stellate cells and endothelial cells. We were able to capture different facets of PDAC heterogeneity in scope of the tumor microenvironment using two different cancer and stellate cell lines, and one endothelial cell line …

Plasma-Based CO2 Conversion

Authors

Annemie Bogaerts,Ramses Snoeckx

Journal

An Economy Based on Carbon Dioxide and Water: Potential of Large Scale Carbon Dioxide Utilization

Published Date

2019

In this chapter, we will explain why plasma is promising for CO2 conversion. First, we will give a brief introduction on plasma technology (Sect. 8.1), and highlight its unique feature for CO2 conversion (Sect. 8.2). Next, we will briefly illustrate the most common types of plasma reactors, explaining why some plasma types exhibit better energy efficiency than others (Sect. 8.3). In Sect. 8.4, we will present the state-of-the-art on plasma-based CO2 conversion, for pure CO2 splitting and the combined conversion of CO2 with either CH4, H2O or H2, for different types of plasma reactors. To put plasma technology in a broader perspective of emerging technologies for CO2 conversion, we will discuss in Sect. 8.5 its inherent promising characteristics for this application. Finally, in Sect. 8.6 we will summarize the state-of-the-art and the current limitations, and elaborate on future research directions needed to bring plasma-based …

Machine learning-driven optimization of plasma-catalytic dry reforming of methane

Authors

Yuxiang Cai,Danhua Mei,Yanzhen Chen,Annemie Bogaerts,Xin Tu

Journal

Journal of Energy Chemistry

Published Date

2024/4/25

This study investigates the dry reformation of methane (DRM) over Ni/Al2O3 catalysts in a dielectric barrier discharge (DBD) non-thermal plasma reactor. A novel hybrid machine learning (ML) model is developed to optimize the plasma-catalytic DRM reaction with limited experimental data. To address the non-linear and complex nature of the plasma-catalytic DRM process, the hybrid ML model integrates three well-established algorithms: regression trees, support vector regression, and artificial neural networks. A genetic algorithm (GA) is then used to optimize the hyperparameters of each algorithm within the hybrid ML model. The ML model achieved excellent agreement with the experimental data, demonstrating its efficacy in accurately predicting and optimizing the DRM process. The model was subsequently used to investigate the impact of various operating parameters on the plasma-catalytic DRM …

Plasma-based conversion of martian atmosphere into life-sustaining chemicals: The benefits of utilizing martian ambient pressure

Authors

Seán Kelly,Elizabeth Mercer,Yury Gorbanev,Igor Fedirchyk,Claudia Verheyen,Klaus Werner,Pluton Pullumbi,Aidan Cowley,Annemie Bogaerts

Journal

Journal of CO2 Utilization

Published Date

2024/2/1

We explored the potential of plasma-based In-Situ Resource Utilization (ISRU) for Mars through the conversion of Martian atmosphere (∼96% CO2, 2% N2, and 2% Ar) into life-sustaining chemicals. As the Martian surface pressure is about 1% of the Earth’s surface pressure, it is an ideal environment for plasma-based gas conversion using microwave reactors. At 1000 W and 10 Ln/min (normal liters per minute), we produced ∼76 g/h of O2 and ∼3 g/h of NOx using a 2.45 GHz waveguided reactor at 25 mbar, which is ∼3.5 times Mars ambient pressure. The energy cost required to produce O2 was ∼0.013 kWh/g, which is very promising compared to recently concluded MOXIE experiments on the Mars surface. This marks a crucial step towards realizing the extension of human exploration.

Electrified CO2 conversion: integrating experimental, computational, and process simulation methods for sustainable chemical synthesis

Authors

Federica De Luca,Salvatore Abate,Annemie Bogaerts,Gabriele Centi

Published Date

2024

Nowadays, the burning of fossil fuels, particularly petroleum, natural gas, and coal, meets the rising need for power and fuels for automobiles and industries. This has given rise to ecological and climate challenges. This thesis explores these issues from three distinct perspectives:(i) experimental,(ii) computational, and (iii) process simulation, with a focus on studying CO2 as an alternative and economically viable raw material. Firstly, the experimental study is focused on the synthesis, characterization, and testing of novel catalysts for electroreduction of CO2 and oxalic acid, an intermediate product of CO2. Electrocatalysts based on Cu supported by citrus (orange and lemon) peel biomass are prepared. These catalysts exhibit activity in the electrochemical reduction of CO2, emphasizing the effectiveness of biomasses, particularly orange peels, as environmentally friendly precursors for sustainable and efficient electrocatalysts. In addition, graphitic carbon nitrides/TiO2 nanotubes (g-C3N4/TiNT) composites are prepared for the electrocatalytic reduction of oxalic acid to glycolic acid, revealing superior electrocatalytic properties compared to pristine TiNT. Characterization by X-ray diffraction, X-ray photoelectron spectroscopy, and scanning electronic microscopy were performed for all the prepared electrocatalysts. Delving into the reduction of CO2 on Cu catalysts, a computational study about the synthesis of methanol on Cu (111) surface is performed by using the Vienna Ab initio Simulation Package. A systematic study is carried out to define the activation energies of the elementary reactions by using mGGA DF. Consequently, it is shown that the …

Plasma-based dry reforming of CH4: Plasma effects vs. thermal conversion

Authors

Joachim Slaets,Björn Loenders,Annemie Bogaerts

Journal

Fuel

Published Date

2024/3/15

In this work we evaluate the chemical kinetics of dry reforming of methane in warm plasmas (1000–4000 K) using modelling with a newly developed chemistry set, for a broad range of parameters (temperature, power density and CO2/CH4 ratio). We compare the model against thermodynamic equilibrium concentrations, serving as validation of the thermal chemical kinetics. Our model reveals that plasma-specific reactions (i.e., electron impact collisions) accelerate the kinetics compared to thermal conversion, rather than altering the overall kinetics pathways and intermediate products, for gas temperatures below 2000 K. For higher temperatures, the kinetics are dominated by heavy species collisions and are strictly thermal, with negligible influence of the electrons and ions on the overall kinetics. When studying the effects of different gas mixtures on the kinetics, we identify important intermediate species, side …

Plasma Catalysis for a Net-zero Economy (ISPCEM 2022)

Authors

Xin Tu,Changjun Liu,Annemie Bogaerts,Tomohiro Nozaki,Oi Lun Li,Ana María Gómez Ramírez

Published Date

2024/4/17

We are delighted to present the special issue entitled “Plasma Catalysis for a Net-zero Economy” in Catalysis Today, based on the 5 th International Symposium on Plasmas for Catalysis and Energy Materials (ISPCEM 2022). Due to COVID-related delays, the originally planned 5 th ISPCEM in 2020 was held successfully in a hybrid mode, both in Liverpool, UK and remotely, during July 2022.Launched in 2012 as biannual conferences, the ISPCEM symposia series has fostered knowledge exchange and collaboration among academia and industry. These conferences focus on advancements in plasma technologies for energy and environmental catalysis, as well as the development of new energy materials. The success of this cross-disciplinary platform is evident in the numerous discoveries and applications documented in previous special issues of Catalysis Today [1],[2],[3], Journal of Energy Chemistry [4] and …

Inhibiting recombination to improve the performance of plasma-based CO2 conversion

Authors

Kaiyi Wang,Sara Ceulemans,Hao Zhang,Ivan Tsonev,Yilin Zhang,Yanhui Long,Mengxiang Fang,Xiaodong Li,Jianhua Yan,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2024/2/1

Warm plasma offers a promising route for CO 2 splitting into valuable CO, yet recombination reactions of CO with oxygen, forming again CO 2, have recently emerged as critical limitation. This study combines experiments and fluid dynamics+ chemical kinetics modelling to comprehensively analyse the recombination reactions upon CO 2 splitting in an atmospheric plasmatron. We introduce an innovative in-situ gas sampling technique, enabling 2D spatial mapping of gas product compositions and temperatures, experimentally confirming for the first time the substantial limiting effect of CO recombination reactions in the afterglow region. Our results show that the CO mole fraction at a 5 L/min flow rate drops significantly from 11.9% at a vertical distance of z= 20 mm in the afterglow region to 8.6% at z= 40 mm. We constructed a comprehensive 2D model that allows for spatial reaction rates analysis incorporating crucial …

Importance of geometric effects in scaling up energy-efficient plasma-based nitrogen fixation

Authors

Ivan Tsonev,Hamid Ahmadi Eshtehardi,Marie-Paule Delplancke,Annemie Bogaerts

Journal

Sustainable Energy & Fuels

Published Date

2024

Despite the recent promising potential of plasma-based nitrogen fixation, the technology faces significant challenges in efficient upscaling. To tackle this challenge, we investigate two reactors, i.e., a small one, operating in a flow rate range of 5 – 20 ln/min and current range of 200 – 500 mA, and a larger one, operating at higher flow rate (100 – 300 ln/min) and current (400 – 1000 mA). Both reactors operate in a pin-to-pin configuration and are powered by direct current (DC) from the same power supply unit, to allow easy comparison and evaluate the effect of upscaling. In the small reactor, we achieve the lowest energy cost (EC) of 2.8 MJ/mol, for a NOx concentration of 1.72%, at a flow rate of 20 ln/min, yielding a production rate (PR) of 33 g/h. These values are obtained in air; in oxygen-enriched air, the results are typically better, at the cost of producing oxygen-enriched air. In the large reactor, the higher flow rates …

Effect of Gas Composition on Temperature and CO2 Conversion in a Gliding Arc Plasmatron reactor: Insights for Post‐plasma Catalysis from Experiments and Computation

Authors

Wencong Xu,Senne Van Alphen,Vladimir V Galvita,Vera Meynen,Annemie Bogaerts

Journal

ChemSusChem

Published Date

2024/3/14

Plasma‐based CO2 conversion has attracted increasing interest. However, to understand the impact of plasma operation on post‐plasma processes, we studied the effect of adding N2, N2/CH4 and N2/CH4/H2O to a CO2 gliding arc plasmatron (GAP) to obtain valuable insights into their impact on exhaust stream composition and temperature, which will serve as feed gas and heat for post‐plasma catalysis  (PPC). Adding N2 improves the CO2 conversion from 4% to 13%, and CH4 addition further promotes it to 44%, and even to 61% at lower gas flow rate (6 L/min), allowing a higher yield of CO and hydrogen for PPC. The addition of H2O, however, reduces the CO2 conversion from 55% to 22%, but it also lowers the  energy cost, from 5.8 to 3 kJ/L. Regarding the temperature at 4.9 cm post‐plasma, N2 addition increases the temperature, while the CO2/CH4 ratio has no significant effect on temperature. We also …

Investigation of O atom kinetics in O2 plasma and its afterglow

Authors

Matthias Castor Karel Albrechts,Ivan Tsonev,Annemie Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2024/4/16

We have developed a comprehensive kinetic model to study the O atom kinetics in an O2 plasma and its afterglow. By adopting a pseudo-1D plug-flow formalism within the kinetic model, our aim is to assess how far the O atoms travel in the plasma afterglow, evaluating its potential as a source of O atoms for post-plasma gas conversion applications. Since we could not find experimental data for pure O2 plasma at atmospheric pressure, we first validated our model at low pressure (1-10 Torr) where very good experimental data are available. Good agreement between our model and experiments was achieved for the reduced electric field, gas temperature and the densities of the dominant neutral species, i.e. O2(a), O2(b) and O. Subsequently, we confirmed that the chemistry set is consistent with thermodynamic equilibrium calculations at atmospheric pressure. Finally, we investigated the O atom densities in the O2 …

Plasma-based dry reforming of methane in a dielectric barrier discharge reactor: Importance of uniform (sub) micron packings/catalysts to enhance the performance

Authors

Jinxin Wang,Kaimin Zhang,Myrjam Mertens,Annemie Bogaerts,Vera Meynen

Journal

Applied Catalysis B: Environmental

Published Date

2023/11/15

This study presents new insights on the effect of (sub)micrometer particle sized materials in plasma-based CO2-CH4 reforming by investigating the performance of SiO2 spheres (with/without supported metal) of varying particle sizes. (Sub)micron particles synthesized through the Stöber method were used instead of (sub)millimeter particles employed in previous studies. Increasing particle size (from 120 nm to 2390 nm) was found to first increase and then decrease conversion and energy yield, with optimal performance achieved using 740 nm 5 wt% Ni loaded SiO2, which improved CO2 and CH4 conversion, and energy yield to 44%, 55%, and 0.271 mmol/kJ, respectively, compared to 20%, 27%, and 0.116 mmol/kJ in an empty reactor at the same flow rate. This is the first to achieve significant performance improvement in a fully packed reactor, highlighting the importance of selecting a suitable particle size. The …

Post-plasma quenching to improve conversion and energy efficiency in a CO2 microwave plasma

Authors

Elizabeth Rose Mercer,Senne Van Alphen,CFAM van Deursen,TWH Righart,WA Bongers,Rony Snyders,Annemie Bogaerts,MCM van de Sanden,FJJ Peeters

Journal

Fuel

Published Date

2023/2/15

Transforming CO2 into value-added chemicals is crucial to realizing a carbon–neutral economy, and plasma-based conversion, a Power-2-X technology, offers a promising route to realizing an efficient and scalable process. This paper investigates the effects of post-plasma placement of a converging–diverging nozzle in a vortex-stabilized 2.45 GHz CO2 microwave plasma reactor to increase energy efficiency and conversion. The CDN leads to a 21 % relative increase in energy efficiency (31 %) and CO2 conversion (13 %) at high flow rates and near-atmospheric conditions. The most significant performance improvement was seen at low flow rates and sub-atmospheric pressure (300 mbar), where energy efficiency was 23 % and conversion was 28 %, a 71 % relative increase over conditions without the CDN. Using CFD simulations, we found that the CDN produces a change in the flow geometry, leading to a …

Power concentration determined by thermodynamic properties in complex gas mixtures: the case of plasma-based dry reforming of methane

Authors

Omar Biondo,Ashley Hughes,Alex van de Steeg,Stein Maerivoet,Björn Loenders,Gerard van Rooij,Annemie Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2023/4/5

We investigate discharge contraction in a microwave plasma at sub-atmospheric pressure, operating in CO 2 and CO 2/CH 4 mixtures. The rise of the electron number density with plasma contraction intensifies the gas heating in the core of the plasma. This, in turn, initiates fast core-periphery transport and defines the rate of thermal chemistry over plasma chemistry. In this context, power concentration describes the overall mechanism including plasma contraction and chemical kinetics. In a complex chemistry such as dry reforming of methane, transport of reactive species is essential to define the performance of the reactor and achieve the desired outputs. Thus, we couple experimental observations and thermodynamic calculations for model validation and understanding of reactor performance. Adding CH 4 alters the thermodynamic properties of the mixture, especially the reactive component of the heat …

Hybrid plasma-thermal system for methane conversion to ethylene and hydrogen

Authors

Rui Liu,Yingzi Hao,Tong Wang,Li Wang,Annemie Bogaerts,Hongchen Guo,Yanhui Yi

Journal

Chemical Engineering Journal

Published Date

2023/5/1

By combining dielectric barrier discharge plasma and external heating, we exploit a two-stage hybrid plasma-thermal system (HPTS), i.e., a plasma stage followed by a thermal stage, for direct non-oxidative coupling of CH4 to C2H4 and H2, yielding a CH4 conversion of ca. 17 %. In the two-stage HPTS, the plasma first converts CH4 into C2H6 and C3H8, which in the thermal stage leads to a high C2H4 selectivity of ca. 63 % by pyrolysis, with H2 selectivity of ca. 64 %.

Dry reforming in a dielectric barrier discharge reactor with non-uniform discharge gap: effects of metal rings on the discharge behavior and performance

Authors

Jinxin Wang,Kaimin Zhang,Vera Meynen,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2023/6/1

The application of dielectric barrier discharge (DBD) plasma reactors is promising in various environmental and energy processes, but is limited by their low energy yield. In this study, we put a number of stainless steel rings over the inner electrode rod of the DBD reactor to change the local discharge gap and electric field, and we studied the dry reforming performance. At 50 W supplied power, the metal rings mostly have a negative impact on the performance, which we attribute to the non-uniform spatial distribution of the discharges caused by the rings. However, at 30 W supplied power, the energy yield is higher than at 50 W and the placement of the rings improves the performance of the reactor. More rings and with a larger cross-sectional diameter can further improve the performance. The reactor with 20 rings with a 3.2 mm cross-sectional diameter exhibits the best performance in this study. Compared to the …

Does non-thermal plasma modify biopolymers in solution? A chemical and mechanistic study for alginate

Authors

Francesco Tampieri,Albert Espona-Noguera,Cédric Labay,Maria-Pau Ginebra,Maksudbek Yusupov,Annemie Bogaerts,Cristina Canal

Journal

Biomaterials science

Published Date

2023

In the last decades, non-thermal plasma has been extensively investigated as a relevant tool for various biomedical applications, ranging from tissue decontamination to regeneration and from skin treatment to tumor therapies. This high versatility is due to the different kinds and amount of reactive oxygen and nitrogen species that can be generated during a plasma treatment and put in contact with the biological target. Some recent studies report that solutions of biopolymers with the ability to generate hydrogels, when treated with plasma, can enhance the generation of reactive species and influence their stability, resulting thus in the ideal media for indirect treatments of biological targets. The direct effects of the plasma treatment on the structure of biopolymers in water solution, as well as the chemical mechanisms responsible for the enhanced generation of RONS, are not yet fully understood. In this study, we aim at …

Injectable Plasma‐Treated Alginate Hydrogel for Oxidative Stress Delivery to Induce Immunogenic Cell Death in Osteosarcoma

Authors

Milica Živanić,Albert Espona‐Noguera,Hanne Verswyvel,Evelien Smits,Annemie Bogaerts,Abraham Lin,Cristina Canal

Journal

Advanced Functional Materials

Published Date

2023

Cold atmospheric plasma (CAP) is a source of cell‐damaging oxidant molecules that may be used as low‐cost cancer treatment with minimal side effects. Liquids treated with cold plasma and enriched with oxidants are a modality for non‐invasive treatment of internal tumors with cold plasma via injection. However, liquids are easily diluted with body fluids which impedes high and localized delivery of oxidants to the target. As an alternative, plasma‐treated hydrogels (PTH) emerge as vehicles for the precise delivery of oxidants. This study reports an optimal protocol for the preparation of injectable alginate PTH that ensures the preservation of plasma‐generated oxidants. The generation, storage, and release of oxidants from the PTH are assessed. The efficacy of the alginate PTH in cancer treatment is demonstrated in the context of cancer cell cytotoxicity and immunogenicity–release of danger signals and …

Plasma-based CO2 conversion: How to correctly analyze the performance?

Authors

Bart Wanten,Rani Vertongen,Robin De Meyer,Annemie Bogaerts

Published Date

2023/7/22

Plasma-based CO2 conversion is promising for carbon capture and utilization. However, inconsistent reporting of the performance metrics makes it difficult to compare plasma processes systematically, complicates elucidating the underlying mechanisms and compromises further development of this technology. Therefore, this critical review summarizes the correct definitions for gas conversion in plasma reactors and highlights common errors and inconsistencies observed throughout literature. This is done for pure CO2 splitting, dry reforming of methane and CO2 hydrogenation. We demonstrate that the change in volumetric flow rate is a critical aspect, inherent to these reactions, that is often not correctly taken into account. For dry reforming of methane and CO2 hydrogenation, we also demonstrate inconsistent reporting of energy efficiency, and through numerical examples, we show the significance of these …

Nitrogen Fixation by an Arc Plasma at Elevated Pressure to Increase the Energy Efficiency and Production Rate of NOx

Authors

Ivan Tsonev,Colin O’Modhrain,Annemie Bogaerts,Yury Gorbanev

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2023/1/23

Plasma-based nitrogen fixation for fertilizer production is an attractive alternative to the fossil fuel-based industrial processes. However, many factors hinder its applicability, e.g., the commonly observed inverse correlation between energy consumption and production rates or the necessity to enhance the selectivity toward NO2, the desired product for a more facile formation of nitrate-based fertilizers. In this work, we investigated the use of a rotating gliding arc plasma for nitrogen fixation at elevated pressures (up to 3 barg), at different feed gas flow rates and composition. Our results demonstrate a dramatic increase in the amount of NOx produced as a function of increasing pressure, with a record-low EC of 1.8 MJ/(mol N) while yielding a high production rate of 69 g/h and a high selectivity (94%) of NO2. We ascribe this improvement to the enhanced thermal Zeldovich mechanism and an increased rate of NO …

Effect of lipid oxidation on the channel properties of Cx26 hemichannels: A molecular dynamics study

Authors

Maria C Oliveira,Rodrigo M Cordeiro,Annemie Bogaerts

Journal

Archives of Biochemistry and Biophysics

Published Date

2023/9/15

Intercellular communication plays a crucial role in cancer, as well as other diseases, such as inflammation, tissue degeneration, and neurological disorders. One of the proteins responsible for this, are connexins (Cxs), which come together to form a hemichannel. When two hemichannels of opposite cells interact with each other, they form a gap junction (GJ) channel, connecting the intracellular space of these cells. They allow the passage of ions, reactive oxygen and nitrogen species (RONS), and signaling molecules from the interior of one cell to another cell, thus playing an essential role in cell growth, differentiation, and homeostasis. The importance of GJs for disease induction and therapy development is becoming more appreciated, especially in the context of oncology. Studies have shown that one of the mechanisms to control the formation and disruption of GJs is mediated by lipid oxidation pathways, but the …

Bioactive Nonthermal Biocompatible Plasma Enhances Migration on Human Gingival Fibroblasts (Adv. Healthcare Mater. 4/2023)

Authors

Ihn Han,In‐Seok Song,Seung Ah Choi,Taebok Lee,Maksudbek Yusupov,Priyanka Shaw,Annemie Bogaerts,Eun Ha Choi,Jae Jun Ryu

Journal

Advanced Healthcare Materials

Published Date

2023/2

In article 2200527 by Eun Ha Choi, Jae Jun Ryu, and co-workers, nonthermal biocompatible plasma (NBP) stimulates human gingival fibroblast (HGF) cell migration through focal adhesion kinase (FAK) pathway. NBP inhibits colony formation and induces matrix metalloproteinase (MMP) expression, extracellular matrix (ECM) degradation, and subsequent cell migration. NBP plays a role in cell motility to regulate AKT and p21 signals in HGF cells, through actin modification of cytoskeleton.

Special Issue on “Dielectric Barrier Discharges and their Applications” in Commemoration of the 20th Anniversary of Dr. Ulrich Kogelschatz’s Work

Authors

Annemie Bogaerts

Journal

Plasma Chemistry and Plasma Processing

Published Date

2023/11

Twenty years ago, Dr. Ulrich Kogelschatz wrote a seminal review paper,“Dielectric-barrier Discharges: Their History, Discharge Physics, and Industrial Applications”, which was published in Plasma Chem. Plasma Process. in March 2003 [1]. Although Ulrich sadly passed away much too early (June 25, 2016), his work has inspired the entire low-temperature atmospheric pressure plasma community. This is demonstrated by the impressive number of citations of the above-mentioned “must read” review paper (over 4000 according to Google Scholar, and it continues to receive over 150 citations each year), but also several other of his papers have received more than 1000 citations. Hence, we decided to publish a special issue on DBDs and their wide range of applications, 20 years after his seminal review paper in the same journal, to celebrate Dr. Kogelschatz’s inspiring work. We invited all leading authors working …

OrBITS: label-free and time-lapse monitoring of patient derived organoids for advanced drug screening

Authors

Christophe Deben,Edgar Cardenas De La Hoz,Maxim Le Compte,Paul Van Schil,Jeroen MH Hendriks,Patrick Lauwers,Suresh Krishan Yogeswaran,Filip Lardon,Patrick Pauwels,Steven Van Laere,Annemie Bogaerts,Evelien Smits,Steve Vanlanduit,Abraham Lin

Journal

Cellular Oncology

Published Date

2023/4

BackgroundPatient-derived organoids are invaluable for fundamental and translational cancer research and holds great promise for personalized medicine. However, the shortage of available analysis methods, which are often single-time point, severely impede the potential and routine use of organoids for basic research, clinical practise, and pharmaceutical and industrial applications.MethodsHere, we developed a high-throughput compatible and automated live-cell image analysis software that allows for kinetic monitoring of organoids, named Organoid Brightfield Identification-based Therapy Screening (OrBITS), by combining computer vision with a convolutional network machine learning approach. The OrBITS deep learning analysis approach was validated against current standard assays for kinetic imaging and automated analysis of organoids. A drug screen of standard-of-care lung and pancreatic cancer …

Phototoxicity and cell passage affect intracellular reactive oxygen species levels and sensitivity towards non-thermal plasma treatment in fluorescently-labeled cancer cells

Authors

Hanne Verswyvel,Christophe Deben,An Wouters,Filip Lardon,Annemie Bogaerts,Evelien Smits,Abraham Lin

Journal

Journal of Physics D: Applied Physics

Published Date

2023/4/28

Live-cell imaging with fluorescence microscopy is a powerful tool, especially in cancer research, widely-used for capturing dynamic cellular processes over time. However, light-induced toxicity (phototoxicity) can be incurred from this method, via disruption of intracellular redox balance and an overload of reactive oxygen species (ROS). This can introduce confounding effects in an experiment, especially in the context of evaluating and screening novel therapies. Here, we aimed to unravel whether phototoxicity can impact cellular homeostasis and response to non-thermal plasma (NTP), a therapeutic strategy which specifically targets the intracellular redox balance. We demonstrate that cells incorporated with a fluorescent reporter for live-cell imaging have increased sensitivity to NTP, when exposed to ambient light or fluorescence excitation, likely through altered proliferation rates and baseline intracellular ROS …

Atomic oxygen assisted CO2 conversion: A theoretical analysis

Authors

C Verheyen,K van’t Veer,R Snyders,A Bogaerts

Journal

Journal of CO2 Utilization

Published Date

2023/1/1

With climate change still a pressing issue, there is a great need for carbon capture, utilisation and storage (CCUS) methods. We propose a novel concept where CO2 conversion is accomplished by O2 splitting followed by the addition of O atoms to CO2. The latter is studied here by means of kinetic modelling. In the first instance, we study various CO2/O ratios, and we observe an optimal CO2 conversion of around 30–40% for 50% O addition. Gas temperature also has a large influence, with a minimum temperature of around 1000 K to a maximum of 2000 K for optimal conversion. In the second instance, we study various CO2/O/O2 ratios, due to O2 being a starting gas. Also here we define optimal regions for CO2 conversion, which reach maximum conversion for a CO2 fraction of 50% and an O/O2 ratio bigger than 1. Those can be expanded by heating on one hand, for low atomic oxygen availability, and by …

Simulation of glow and arc discharges in nitrogen: effects of the cathode emission mechanisms

Authors

I Tsonev,J Boothroyd,St Kolev,A Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2023/5/15

Experimental evidence in the literature has shown that low-current direct current nitrogen discharges can exist in both glow and arc regimes at atmospheric pressure. However, modelling investigations of the positive column that include the influence of the cathode phenomena are scarce. In this work we developed a 2D axisymmetric model of a plasma discharge in flowing nitrogen gas, studying the influence of the two cathode emission mechanisms—thermionic field emission and secondary electron emission—on the cathode region and the positive column. We show for an inlet gas flow velocity of 1 ms− 1 in the current range of 80–160 mA, that the electron emission mechanism from the cathode greatly affects the size and temperature of the cathode region, but does not significantly influence the discharge column at atmospheric pressure. We also demonstrate that in the discharge column the electron density …

Correction: From the Birkeland–Eyde process towards energy-efficient plasma-based NO X synthesis: a techno-economic analysis

Authors

Kevin HR Rouwenhorst,Fatme Jardali,Annemie Bogaerts,Leon Lefferts

Journal

Energy & environmental science

Published Date

2023

Correction for ‘From the Birkeland–Eyde process towards energy-efficient plasma-based NOX synthesis: a techno-economic analysis’ by Kevin H. R. Rouwenhorst et al., Energy Environ. Sci., 2021, 14, 2520–2534, https://doi.org/10.1039/D0EE03763J.

Assessing neutral transport mechanisms in aspect ratio dependent etching by means of experiments and multiscale plasma modeling

Authors

Patrick Vanraes,Syam Parayil Venugopalan,Matthieu Besemer,Annemie Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2023/7/3

Since the onset of pattern transfer technologies for chip manufacturing, various strategies have been developed to circumvent or overcome aspect ratio dependent etching (ARDE). These methods have, however, their own limitations in terms of etch non-idealities, throughput or costs. Moreover, they have mainly been optimized for individual in-device features and die-scale patterns, while occasionally ending up with poor patterning of metrology marks, affecting the alignment and overlay in lithography. Obtaining a better understanding of the underlying mechanisms of ARDE and how to mitigate them therefore remains a relevant challenge to date, for both marks and advanced nodes. In this work, we accordingly assessed the neutral transport mechanisms in ARDE by means of experiments and multiscale modeling for SiO 2 etching with CHF 3/Ar and CF 4/Ar plasmas. The experiments revealed a local maximum in …

Supplementary Information for" In-situ Plasma Studies using a Direct Current Microplasma in a Scanning Electron Microscope"

Authors

Lukas Grünewald,Dmitry Chezganov,Robin De Meyer,Andrey Orekhov,Sandra Van Aert,Annemie Bogaerts,Sara Bals,Jo Verbeeck

Published Date

2023

Supplementary information for the article" In-situ Plasma Studies using a Direct Current Microplasma in a Scanning Electron Microscope" containing the videos of in-situ SEM imaging (mp4 files), raw data/images, and Jupyter notebooks (ipynb files) for data treatment and plots. Link to the preprint: https://doi. org/10.48550/arXiv. 2308.15123 Explanation of the data files can be found in the Information. pdf file. The Videos folder contains the in-situ SEM image series mentioned in the paper. If there are any questions/bugs, feel free to contact me at lukas. grunewald_at_uantwerpen. be

Effects of Nitro-Oxidative Stress on Biomolecules: Part 1—Non-Reactive Molecular Dynamics Simulations

Authors

Maryam Ghasemitarei,Tayebeh Ghorbi,Maksudbek Yusupov,Yuantao Zhang,Tong Zhao,Parisa Shali,Annemie Bogaerts

Published Date

2023/9/11

Plasma medicine, or the biomedical application of cold atmospheric plasma (CAP), is an expanding field within plasma research. CAP has demonstrated remarkable versatility in diverse biological applications, including cancer treatment, wound healing, microorganism inactivation, and skin disease therapy. However, the precise mechanisms underlying the effects of CAP remain incompletely understood. The therapeutic effects of CAP are largely attributed to the generation of reactive oxygen and nitrogen species (RONS), which play a crucial role in the biological responses induced by CAP. Specifically, RONS produced during CAP treatment have the ability to chemically modify cell membranes and membrane proteins, causing nitro-oxidative stress, thereby leading to changes in membrane permeability and disruption of cellular processes. To gain atomic-level insights into these interactions, non-reactive molecular dynamics (MD) simulations have emerged as a valuable tool. These simulations facilitate the examination of larger-scale system dynamics, including protein-protein and protein-membrane interactions. In this comprehensive review, we focus on the applications of non-reactive MD simulations in studying the effects of CAP on cellular components and interactions at the atomic level, providing a detailed overview of the potential of CAP in medicine. We also review the results of other MD studies that are not related to plasma medicine but explore the effects of nitro-oxidative stress on cellular components and are therefore important for a broader understanding of the underlying processes.

The adsorption and decomposition of SF6 over defective and hydroxylated MgO surfaces: A DFT study

Authors

Zhaolun Cui,Yanpeng Hao,Amin Jafarzadeh,Shangkun Li,Annemie Bogaerts,Licheng Li

Journal

Surfaces and Interfaces

Published Date

2023/2/1

Plasma degradation is one of the most effective methods for the abatement of greenhouse gas sulfur hexafluoride (SF6). To evaluate the potential of MgO as a catalyst in plasma degradation, we investigate the catalytic properties of MgO on SF6 adsorption and activation by density functional theory (DFT) where the O-defective and hydroxylated surfaces are considered as two typical plasma-generated surfaces. Our results show that perfect MgO (001) and (111) surfaces cannot interact with SF6 and only physical adsorption happens. In case of O-defective MgO surfaces, the O vacancy is the most stable adsorption site. SF6 undergoes a decomposition to SF5 and F over the O-defective MgO (001) surface and undergoes an elongation of the bottom S-F bond over the O-defective (111) surface. Besides, SF6 shows a physically adsorption at the stepsite of the MgO (001) surface, accompanied by small changes in its …

Characterization of non-thermal dielectric barrier discharges for plasma medicine: from plastic well plates to skin surfaces

Authors

Abraham Lin,Mikhail Gromov,Anton Nikiforov,Evelien Smits,Annemie Bogaerts

Journal

Plasma Chemistry and Plasma Processing

Published Date

2023/11

In the past decade, the applications of dielectric barrier discharge (DBD) plasma technologies have been expanding, and one of the most exciting and rapidly growing applications is in biology and medicine. Most biomedical studies with DBD plasma systems are performed in vitro, which include cells grown on the surface of plastic well plates, or in vivo, which include animal research models (e.g. mice, pigs). Since many DBD systems use the biological target as the secondary electrode for direct plasma generation and treatment, they are sensitive to the surface properties of the target, and thus can be altered based on the in vitro or in vivo system used. This could consequently affect biological response from plasma treatment. Therefore, in this study, we investigated the DBD plasma behavior both in vitro (i.e. 96-well flat bottom plates, 96-well U-bottom plates, and 24-well flat bottom plates), and in vivo (i.e. mouse …

Vortex Chamber

Published Date

2023/12/28

The present disclosure relates to a vortex chamber comprising a cavity elongating along a central axis and a swirl generator. The swirl generator comprises a plurality of swirl channels configured for introducing a gas flow into the cavity as a vortex flow about the central axis, each swirl channel comprising a channel entrance and a channel exit. The swirl generator further comprises a gas redistribution chamber comprising one or more main gas supply inlets for receiving a gas, a distribution channel configured for distributing the gas received from the one or more main gas supply inlets to the channel entrances of the swirl channels, and one or more blocking walls configured for blocking and unblocking one or more entrances of the plurality of swirl channels. The vortex chamber is further configured for relatively rotating the channel entrances of the swirl channels with respect to the one or more blocking walls from a …

Inactivation of SARS-CoV-2 and other enveloped and non-enveloped viruses with non-thermal plasma for hospital disinfection

Authors

Maxime Sahun,Angela Privat-Maldonado,Abraham Lin,Naomi De Roeck,Lisa Van der Heyden,Michaël Hillen,Johan Michiels,Gunther Steenackers,Evelien Smits,Kevin K Ariën,Philippe G Jorens,Peter Delputte,Annemie Bogaerts

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2023/3/23

As recently highlighted by the SARS-CoV-2 pandemic, viruses have become an increasing burden for health, global economy, and environment. The control of transmission by contact with contaminated materials represents a major challenge, particularly in hospital environments. However, the current disinfection methods in hospital settings suffer from numerous drawbacks. As a result, several medical supplies that cannot be properly disinfected are not reused, leading to severe shortages and increasing amounts of waste, thus prompting the search for alternative solutions. In this work, we report that non-thermal plasma (NTP) can effectively inactivate SARS-CoV-2 from non-porous and porous materials commonly found in healthcare facilities. We demonstrated that 5 min treatment with a dielectric barrier discharge NTP can inactivate 100% of SARS-CoV-2 (Wuhan and Omicron strains) from plastic material. Using …

Enhanced NH3 Synthesis from Air in a Plasma Tandem-Electrocatalysis System Using Plasma-Engraved N-Doped Defective MoS2

Authors

Jiageng Zheng,Hao Zhang,Jiabao Lv,Meng Zhang,Jieying Wan,Nick Gerrits,Angjian Wu,Bingru Lan,Weitao Wang,Shuangyin Wang,Xin Tu,Annemie Bogaerts,Xiaodong Li

Journal

JACS Au

Published Date

2023/4/26

We have developed a sustainable method to produce NH3 directly from air using a plasma tandem-electrocatalysis system that operates via the N2–NOx–NH3 pathway. To efficiently reduce NO2– to NH3, we propose a novel electrocatalyst consisting of defective N-doped molybdenum sulfide nanosheets on vertical graphene arrays (N-MoS2/VGs). We used a plasma engraving process to form the metallic 1T phase, N doping, and S vacancies in the electrocatalyst simultaneously. Our system exhibited a remarkable NH3 production rate of 7.3 mg h–1 cm–2 at −0.53 V vs RHE, which is almost 100 times higher than the state-of-the-art electrochemical nitrogen reduction reaction and more than double that of other hybrid systems. Moreover, a low energy consumption of only 2.4 MJ molNH3–1 was achieved in this study. Density functional theory calculations revealed that S vacancies and doped N atoms play a …

Gliding arc/glow discharge for CO2 conversion: Comparing the performance of different discharge configurations

Authors

V Ivanov,Ts Paunska,S Lazarova,A Bogaerts

Journal

Journal of CO2 Utilization

Published Date

2023/1/1

We studied the use of low current (hundreds of milliamperes) gliding arc/glow discharges for CO2 dissociation, at atmospheric pressure, in three different configurations. All of these are based on the gliding arc design with flat diverging electrodes. The discharge is mainly in the normal glow regime with contracted positive column. The CO2 gas is injected from a nozzle, at the closest separation between the electrodes. A pair of quartz glasses is placed on both sides of the electrodes, so that the gas flow is restricted to the active plasma area, between the electrodes. For two of the tested configurations, an external magnetic field was applied, to create a magnetic force, both in the direction of the gas flow, and opposite to the gas flow. In the first case, the arc is accelerated, shortening the period between ignition and extinction, while in the second case, it is stabilized (magnetically-stabilized). We studied two quantities …

3D porous catalysts for Plasma-Catalytic dry reforming of Methane: How does the pore size affect the Plasma-Catalytic Performance?

Authors

Jinxin Wang,Kaimin Zhang,Annemie Bogaerts,Vera Meynen

Journal

Chemical Engineering Journal

Published Date

2023/5/15

The effect of pore size on plasma catalysis is crucial but still unclear. Studies have shown plasma cannot enter micropores and mesopores, so catalysts for traditional thermocatalysis may not fit plasma catalysis. Here, 3D porous Cu and CuO with different pore sizes were prepared using uniform silica particles (10–2000 nm) as templates, and compared in plasma-catalytic dry reforming. In most cases, the smaller the pore size, the higher the conversion of CH4 and CO2. Large pores reachable by more electrons did not improve the reaction efficiency. We attribute this to the small surface area and large crystallite size, as indicated by N2-sorption, mercury intrusion and XRD. While the smaller pores might not be reachable by electrons, due to the sheath formed in front of them, as predicted by modeling, they can still be reached by radicals formed in the plasma, and ions can even be attracted into these pores. An …

Avoiding solid carbon deposition in plasma-based dry reforming of methane

Authors

Omar Biondo,Cas FAM Van Deursen,Ashley Hughes,Alex van de Steeg,Waldo Bongers,MCM van de Sanden,Gerard van Rooij,Annemie Bogaerts

Journal

Green Chemistry

Published Date

2023

Solid carbon deposition is a persistent challenge in dry reforming of methane (DRM), affecting both classical and plasma-based processes. In this work, we use a microwave plasma in reverse vortex flow configuration to overcome this issue in CO2/CH4 plasmas. Indeed, this configuration efficiently mitigates carbon deposition, enabling operation even with pure CH4 feed gas, in contrast to other configurations. At the same time, high reactor performance is achieved, with CO2 and CH4 conversions reaching 33% and 44% respectively, at an energy cost of 14 kJ L−1 for a CO2 : CH4 ratio of 1 : 1. Laser scattering and optical emission imaging demonstrate that the shorter residence time in reverse vortex flow lowers the gas temperature in the discharge, facilitating a shift from full to partial CH4 pyrolysis. This underscores the pivotal role of flow configuration in directing process selectivity, a crucial factor in complex …

Plasma-catalytic ammonia synthesis: Packed catalysts act as plasma modifiers

Authors

Callie Ndayirinde,Yury Gorbanev,Radu-George Ciocarlan,Robin De Meyer,Alessandro Smets,Evgenii Vlasov,Sara Bals,Pegie Cool,Annemie Bogaerts

Journal

Catalysis Today

Published Date

2023/7/1

We studied the plasma-catalytic production of NH3 from H2 and N2 in a dielectric barrier discharge plasma reactor using five different Co-based catalysts supported on Al2O3, namely Co/Al2O3, CoCe/Al2O3, CoLa/Al2O3, CoCeLa/Al2O3 and CoCeMg/Al2O3. The catalysts were characterized via several techniques, including SEM-EDX, and their performance was compared. The best performing catalyst was found to be CoLa/Al2O3, but the differences in NH3 concentration, energy consumption and production rate between the different catalysts were limited under the same conditions (i.e. feed gas, flow rate and ratio, and applied power). At the same time, the plasma properties, such as the plasma power and current profile, varied significantly depending on the catalyst. Taken together, these findings suggest that in the production of NH3 by plasma catalysis, our catalysts act as plasma modifiers, i.e., they change the …

De belofte van hoofdhalskankerorganoïden in kankeronderzoek: een blik op de toekomst

Authors

Hannah Zaryouh,Hanne Verswyvel,Mauranne Bauwens,Gilles Van Haesendonck,Christophe Deben,Abraham Lin,Jorrit De Waele,Jan B Vermorken,Senada Koljenovic,Annemie Bogaerts,Filip Lardon,Evelien Smits,An Wouters

Journal

Onco-hemato: multidisciplinair tijdschrift voor oncologie.-Kraainem

Published Date

2023

Hoofd-halskanker vormt een aanzienlijke uitdaging met bijna 900.000 nieuwe diagnoses per jaar, waarbij de jaarlijkse incidentie blijft stijgen. Vaak wordt de diagnose pas in een laat stadium gesteld, wat complexe behandelingen noodzakelijk maakt. Terugval van patiënten is helaas een veelvoorkomend probleem. De gemiddelde overlevingsduur is beperkt tot enkele maanden. Daarom is er een dringende behoefte om nieuwe, veelbelovende behandelingen te ontwikkelen voor patiënten met hoofd-halskanker. Voor het bereiken van deze vooruitgang spelen innovatieve studiemodellen een cruciale rol. Het ontwikkelen van deze nieuwe behandelingen start met laboratoriumonderzoek, waarbij traditionele tweedimensionale celculturen hun beperkingen hebben. Daarom verschuiven onderzoekers hun aandacht meer en meer naar geavanceerdere driedimensionale modellen, met hoofd-halskankerorganoïden als beloftevol nieuw model. Dit model behoudt immers zowel het genetische profiel als de morfologische kenmerken van de originele tumor van de hoofd-halskankerpatiënt. Hoofdhalskankerorganoïden bieden daarom de mogelijkheid om innovatieve behandelingen te testen en kunnen mogelijk zelfs de respons van een patiënt op bepaalde therapieën voorspellen. Hoewel tumororganoïden als ‘patiënt-in-het-lab’veelbelovend zijn, zijn er uitdagingen te overwinnen, zoals de ontwikkelingstijd en de toepasbaarheid bij alle tumortypes, evenals het ontbreken van immuuncellen en andere micro-omgevingscomponenten. Er is daarom een grote behoefte aan gestandaardiseerde protocollen voor de ontwikkeling van organoïden en …

Microwave plasma-based dry reforming of methane: Reaction performance and carbon formation

Authors

Seán Kelly,Elizabeth Mercer,Robin De Meyer,Radu-George Ciocarlan,Sara Bals,Annemie Bogaerts

Journal

Journal of CO2 Utilization

Published Date

2023/9/1

We investigate atmospheric pressure microwave (MW) plasma (2.45 GHz) conversion in CO2 and CH4 mixtures (i.e., dry reforming of methane, DRM) focusing on reaction performance and carbon formation. Promising energy costs of ∼2.8–3.0 eV/molecule or ∼11.1–11.9 kJ/L are amongst the best performance to date considering the current state-of-the-art for plasma-based DRM for all types of plasma. The conversion is in the range of ∼46–49% and ∼55–67% for CO2 and CH4, respectively, producing primarily syngas (i.e., H2 and CO) with H2/CO ratios of ∼0.6–1 at CH4 fractions ranging from 30% to 45%. Water is the largest byproduct with levels ranging ∼7–14% in the exhaust. Carbon particles visibly impact the plasma at higher CH4 fractions (> 30%), where they become heated and incandescent. Particle luminosity increases with increasing CH4 fractions, with the plasma becoming unstable near a 1:1 …

Meta-analysis of CO2 conversion, energy efficiency, and other performance data of plasma-catalysis reactors with the open access PIONEER database

Authors

Antoine Salden,Maik Budde,Carolina A Garcia-Soto,Omar Biondo,Jairo Barauna,Marzia Faedda,Beatrice Musig,Chloé Fromentin,Minh Nguyen-Quang,Harry Philpott,Golshid Hasrack,Domenico Aceto,Yuxiang Cai,Federico Azzolina Jury,Annemie Bogaerts,Patrick Da Costa,Richard Engeln,María Elena Gálvez,Timo Gans,Tomas Garcia,Vasco Guerra,Carlos Henriques,Monika Motak,Maria Victoria Navarro,Vasile I Parvulescu,Gerard Van Rooij,Bogdan Samojeden,Ana Sobota,Paolo Tosi,Xin Tu,Olivier Guaitella

Published Date

2023/11/1

This paper brings the comparison of performances of CO2 conversion by plasma and plasma-assisted catalysis based on the data collected from literature in this field, organised in an open access online database. This tool is open to all users to carry out their own analyses, but also to contributors who wish to add their data to the database in order to improve the relevance of the comparisons made, and ultimately to improve the efficiency of CO2 conversion by plasma-catalysis. The creation of this database and database user interface is motivated by the fact that plasma-catalysis is a fast-growing field for all CO2 conversion processes, be it methanation, dry reforming of methane, methanolisation, or others. As a result of this rapid increase, there is a need for a set of standard procedures to rigorously compare performances of different systems. However, this is currently not possible because the fundamental …

Plasma-catalytic ammonia synthesis in a dielectric barrier discharge reactor: A combined experimental study and kinetic modeling

Authors

Jakob Afzali Andersen,MC Holm,Kevin van't Veer,Jakob Munkholt Christensen,Martin Østberg,Annemie Bogaerts,AD Jensen

Journal

Chemical Engineering Journal

Published Date

2023/2/1

Plasma-catalytic ammonia synthesis in a dielectric barrier discharge reactor has emerged as a possible route for electrification of nitrogen fixation. In this study, we use a combination of experiments and a plasma kinetic model to investigate the ammonia synthesis from N2 and H2, both with and without a solid packing material in the plasma zone. The effect of plasma power, feed flow rate, N2:H2 feed ratio, gas residence time, temperature, and packing material (MgAl2O4 alone or impregnated with Co or Ru) on the ammonia synthesis rate were examined in the experiments. The kinetic model was employed to improve our understanding of the ammonia formation pathways and identify possible changes in these pathways when altering the N2:H2 feed ratio. A higher NH3 synthesis rate was achieved when increasing the feed flow rate, as well as when increasing the gas temperature from 100 to 200 °C when a …

NH3 and HNOx Formation and Loss in Nitrogen Fixation from Air with Water Vapor by Nonequilibrium Plasma

Authors

Elise Vervloessem,Mikhail Gromov,Nathalie De Geyter,Annemie Bogaerts,Yury Gorbanev,Anton Nikiforov

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2023/3/1

The current global energy crisis indicated that increasing our insight into nonfossil fuel nitrogen fixation pathways for synthetic fertilizer production is more crucial than ever. Nonequilibrium plasma is a good candidate because it can use N2 or air as a N source and water directly as a H source, instead of H2 or fossil fuel (CH4). In this work, we investigate NH3 gas phase formation pathways from humid N2 and especially humid air up to 2.4 mol % H2O (100% relative humidity at 20 °C) by optical emission spectroscopy and Fourier-transform infrared spectroscopy. We demonstrate that the nitrogen fixation capacity is increased when water vapor is added, as this enables HNO2 and NH3 production in both N2 and air. However, we identified a significant loss mechanism for NH3 and HNO2 that occurs in systems where these species are synthesized simultaneously; i.e., downstream from the plasma, HNO2 reacts with …

Liquid treatment with a plasma jet surrounded by a gas shield: effect of the treated substrate and gas shield geometry on the plasma effluent conditions

Authors

Pepijn Heirman,Ruben Verloy,Jana Baroen,Angela Privat-Maldonado,Evelien Smits,Annemie Bogaerts

Journal

Journal of Physics D: Applied Physics

Published Date

2023/12/20

The treatment of a well plate by an atmospheric pressure plasma jet is common for in vitro plasma medicine research. Here, reactive species are largely produced through the mixing of the jet effluent with the surrounding atmosphere. This mixing can be influenced not only by the ambient conditions, but also by the geometry of the treated well. To limit this influence and control the atmosphere, a shielding gas is sometimes applied. However, the interplay between the gas shield and the well geometry has not been investigated. In this work, we developed a 2D-axisymmetric computational fluid dynamics model of the kINPen plasma jet, to study the mixing of the jet effluent with the surrounding atmosphere, with and without gas shield. Our computational and experimental results show that the choice of well type can have a significant influence on the effluent conditions, as well as on the effectiveness of the gas shield …

Methane coupling in nanosecond pulsed plasmas: Correlation between temperature and pressure and effects on product selectivity

Authors

Eduardo Morais,Evangelos Delikonstantis,Marco Scapinello,Gregory Smith,Georgios D Stefanidis,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2023/4/15

We present a zero-dimensional kinetic model to characterise specifically the gas-phase dynamics of methane conversion in a nanosecond pulsed discharge (NPD) plasma reactor. The model includes a systematic approach to capture the nanoscale power discharges and the rapid ensuing changes in electric field, gas and electron temperature, as well as species densities. The effects of gas temperature and reactor pressure on gas conversion and product selectivity are extensively investigated and validated against experimental work. We discuss the important reaction pathways and provide an analysis of the dynamics of the heating and cooling mechanisms. H radicals are found to be the most populous plasma species and they participate in hydrogenation and dehydrogenation reactions, which are the dominant recombination reactions leading to C2H4 and C2H2 as main products (depending on the pressure).

Ammonia decomposition in a dielectric barrier discharge plasma: Insights from experiments and kinetic modeling

Authors

JA Andersen,K van't Veer,JM Christensen,M Østberg,A Bogaerts,AD Jensen

Journal

Chemical Engineering Science

Published Date

2023/5/5

Utilizing ammonia as a storage medium for hydrogen is currently receiving increased attention. A possible method to retrieve the hydrogen is by plasma-catalytic decomposition. In this work, we combined an experimental study, using a dielectric barrier discharge plasma reactor, with a plasma kinetic model, to get insights into the decomposition mechanism. The experimental results revealed a similar effect on the ammonia conversion when changing the flow rate and power, where increasing the specific energy input (higher power or lower flow rate) gave an increased conversion. A conversion as high as 82 % was achieved at a specific energy input of 18 kJ/Nl. Furthermore, when changing the discharge volume from 31 to 10 cm3, a change in the plasma distribution factor from 0.2 to 0.1 was needed in the model to best describe the conversions of the experiments. This means that a smaller plasma volume caused …

Coupling of a microfluidic device with a reference cold plasma jet

Authors

Stephan Reuter,Julien Bisonnette-Dulude,Heirman Pepijn,Sylvain Coulombe,Thomas Gervais,Annemie Bogaerts

Published Date

2023

Coupling of a microfluidic device with a reference cold plasma jet - PolyPublie < Retour au portail Polytechnique Montréal English Accueil À propos Déposer Parcourir Chercher Se connecter Coupling of a microfluidic device with a reference cold plasma jet Stephan Reuter , Julien Bisonnette-Dulude, Heirman Pepijn, Sylvain Coulombe, Thomas Gervais et Annemie Bogaerts Communication écrite (2023) Ce document n'est pas archivé dans PolyPublie Département: Département de génie physique URL de PolyPublie: https://publications.polymtl.ca/54720/ Nom de la conférence: 76th annual Gaseous Electronics Conference Lieu de la conférence: Ann Arbor, Michigan, USA Date(s) de la conférence: 2023-10-09 - 2023-10-13 Date du dépôt: 28 août 2023 13:48 Dernière modification: 28 août 2023 13:48 Citer en APA 7: Reuter, S., Bisonnette-Dulude, J., Pepijn, H., Coulombe, S., Gervais, T., & Bogaerts, A. (octobre 2023…

Is a catalyst always beneficial in plasma catalysis? Insights from the many physical and chemical interactions

Authors

Björn Loenders,Roel Michiels,Annemie Bogaerts

Published Date

2023/6/29

Plasma-catalytic dry reforming of CH4 (DRM) is promising to convert the greenhouse gasses CH4 and CO2 into value-added chemicals, thus simultaneously providing an alternative to fossil resources as feedstock for the chemical industry. However, while many experiments have been dedicated to plasma-catalytic DRM, there is no consensus yet in literature on the optimal choice of catalyst for targeted products, because the underlying mechanisms are far from understood. Indeed, plasma catalysis is very complex, as it encompasses various chemical and physical interactions between plasma and catalyst, which depend on many parameters. This complexity hampers the comparison of experimental results from different studies, which, in our opinion, is an important bottleneck in the further development of this promising research field. Hence, in this perspective paper, we describe the important physical and …

In Situ Plasma Studies Using a Direct Current Microplasma in a Scanning Electron Microscope

Authors

Lukas Grünewald,Dmitry Chezganov,Robin De Meyer,Andrey Orekhov,Sandra Van Aert,Annemie Bogaerts,Sara Bals,Jo Verbeeck

Journal

Advanced Materials Technologies

Published Date

2023/8/29

Microplasmas can be used for a wide range of technological applications and to improve the understanding of fundamental physics. Scanning electron microscopy, on the other hand, provides insights into the sample morphology and chemistry of materials from the mm‐ down to the nm‐scale. Combining both would provide direct insight into plasma‐sample interactions in real‐time and at high spatial resolution. Up till now, very few attempts in this direction have been made, and significant challenges remain. This work presents a stable direct current glow discharge microplasma setup built inside a scanning electron microscope. The experimental setup is capable of real‐time in situ imaging of the sample evolution during plasma operation and it demonstrates localized sputtering and sample oxidation. Further, the experimental parameters such as varying gas mixtures, electrode polarity, and field strength are …

Molecular understanding of the possible mechanisms of oligosaccharide oxidation by cold plasma

Authors

Maksudbek Yusupov,Debbie Dewaele,Pankaj Attri,Umedjon Khalilov,Frank Sobott,Annemie Bogaerts

Journal

Plasma Processes and Polymers

Published Date

2023/2

Cold atmospheric plasma (CAP) is a promising technology for several medical applications, including the removal of biofilms from surfaces. However, the molecular mechanisms of CAP treatment are still poorly understood. Here we unravel the possible mechanisms of CAP‐induced oxidation of oligosaccharides, employing reactive molecular dynamics simulations based on the density functional‐tight binding potential. Specifically, we find that the interaction of oxygen atoms (used as CAP‐generated reactive species) with cellotriose (a model system for the oligosaccharides) can break structurally important glycosidic bonds, which subsequently leads to the disruption of the oligosaccharide molecule. The overall results help to shed light on our experimental evidence for cellotriose oxidation by CAP. This study provides atomic‐level insight into the onset of plasma‐induced removal of biofilms, as oligosaccharides …

Plasma-Assisted Dry Reforming of CH4: How Small Amounts of O2 Addition Can Drastically Enhance the Oxygenate Production─Experiments and Insights from …

Authors

Shangkun Li,Jintao Sun,Yury Gorbanev,Kevin van’t Veer,Björn Loenders,Yanhui Yi,Thomas Kenis,Qi Chen,Annemie Bogaerts

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2023/10/6

Plasma-based dry reforming of methane (DRM) into high-value-added oxygenates is an appealing approach to enable otherwise thermodynamically unfavorable chemical reactions at ambient pressure and near room temperature. However, it suffers from coke deposition due to the deep decomposition of CH4. In this work, we assess the DRM performance upon O2 addition, as well as varying temperature, CO2/CH4 ratio, discharge power, and gas residence time, for optimizing oxygenate production. By adding O2, the main products can be shifted from syngas (CO + H2) toward oxygenates. Chemical kinetics modeling shows that the improved oxygenate production is due to the increased concentration of oxygen-containing radicals, e.g., O, OH, and HO2, formed by electron impact dissociation [e + O2 → e + O + O/O(1D)] and subsequent reactions with H atoms. Our study reveals the crucial role of oxygen-coupling …

Improving Molecule-Metal Surface Reaction Networks Using the Meta-Generalized Gradient Approximation: CO2 Hydrogenation

Authors

Yuxiang Cai,Roel Michiels,Federica De Luca,Erik Neyts,Xin Tu,Annemie Bogaerts,Nick Gerrits

Published Date

2023/8/22

Density functional theory (DFT) is widely used to gain insight in molecule-metal surface reaction networks, which is important for a better understanding of catalysis. However, it is well known that generalized gradient approximation (GGA) density functionals (DF), most often used for the study of reaction networks, struggle to correctly describe both gas-phase molecules and metal surfaces. Also, GGA DFs typically underestimate reaction barriers due to an underestimation of the self-interaction energy. Screened hybrid GGA DFs have been shown to reduce this problem, but are currently intractable for wide usage. In this work we use a more affordable meta-generalized gradient approximation (mGGA) DF in combination with a non-local correlation DF for the first time to study a catalytically important surface reaction network, namely CO2 hydrogenation on Cu. We show that the mGGA DF used, namely rMS-RPBEl-rVV10, outperforms typical GGA DFs by providing similar or better predictions for metals, molecules, as well as molecule-metal surface adsorption and activation energies. Hence, it is a better choice for constructing molecule-metal surface reaction networks.

Acquired non-thermal plasma resistance mediates a shift towards aerobic glycolysis and ferroptotic cell death in melanoma

Authors

Abraham Lin,Maxime Sahun,Eline Biscop,Hanne Verswyvel,Jorrit De Waele,Joey De Backer,Claudia Theys,Bart Cuypers,Kris Laukens,Wim Vanden Berghe,Evelien Smits,Annemie Bogaerts

Journal

Drug Resistance Updates

Published Date

2023/3/1

AimsTo gain insights into the underlying mechanisms of NTP therapy sensitivity and resistance, using the first-ever NTP-resistant cell line derived from sensitive melanoma cells (A375).MethodsMelanoma cells were exposed to NTP and re-cultured for 12 consecutive weeks before evaluation against the parental control cells. Whole transcriptome sequencing analysis was performed to identify differentially expressed genes and enriched molecular pathways. Glucose uptake, extracellular lactate, media acidification, and mitochondrial respiration was analyzed to determine metabolic changes. Cell death inhibitors were used to assess the NTP-induced cell death mechanisms, and apoptosis and ferroptosis was further validated via Annexin V, Caspase 3/7, and lipid peroxidation analysis.ResultsCells continuously exposed to NTP became 10 times more resistant to NTP compared to the parental cell line of the same …

Modelling post-plasma quenching nozzles for improving the performance of CO2 microwave plasmas

Authors

Senne Van Alphen,Ante Hecimovic,Christian K Kiefer,Ursel Fantz,Rony Snyders,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2023/4/15

Given the ecological problems associated to the CO2 emissions of fossil fuels, plasma technology has gained interest for conversion of CO2 into value-added products. Microwave plasmas operating at atmospheric pressure have proven to be especially interesting, due to the high gas temperatures inside the reactor (i.e. up to 6000 K) allowing for efficient thermal dissociation of CO2 into CO and O2. However, the performance of these high temperature plasmas is limited by recombination of CO back into CO2 once the gas cools down in the afterglow. In this work, we computationally investigated several quenching nozzles, developed and experimentally tested by Hecimovic et al., [1] for their ability to quickly cool the gas after the plasma, thereby quenching the CO recombination reactions. Using a 3D computational fluid dynamics model and a quasi-1D chemical kinetics model, we reveal that a reactor without nozzle …

SF6 Degradation in a γ-Al2O3 Packed DBD System: Effects of Hydration, Reactive Gases and Plasma-Induced Surface Charges

Authors

Zhaolun Cui,Chang Zhou,Amin Jafarzadeh,Xiaoxing Zhang,Yanpeng Hao,Licheng Li,Annemie Bogaerts

Journal

Plasma Chemistry and Plasma Processing

Published Date

2023/5

Packed-bed DBD (PB-DBD) plasmas hold promise for effective degradation of greenhouse gases like SF6. In this work, we conducted a combined experimental and theoretical study to investigate the effect of the packing surface structure and the plasma surface discharge on the SF6 degradation in a γ-Al2O3 packing DBD system. Experimental results show that both the hydration effect of the surface (upon moisture) and the presence of excessive reactive gases in the plasma can significantly reduce the SF6 degradation, but they hardly change the discharge behavior. DFT results show that the pre-adsorption of species such as H, OH, H2O and O2 can occupy the active sites (AlIII site) which negatively impacts the SF6 adsorption. H2O molecules pre-adsorbed at neighboring sites can promote the activation of SF6 molecules and lower the reaction barrier for the S-F bond-breaking process. Surface-induced charges …

Plasma-driven CO₂ hydrogenation to CH₃OH over Fe₂O₃/Υ-Al₂O₃ catalyst

Authors

Shengyan Meng,Liang Wu,Miao Liu,Zhaolun Cui,Qian Chen,Shangkun Li,Jiahui Yan,Li Wang,Xinkui Wang,Ji Qian,Hongchen Guo,Jinhai Niu,Annemie Bogaerts,Yanhui Yi

Journal

AIChE journal/American Institute of Chemical Engineers.-New York, NY

Published Date

2023

We report a plasma-assisted CO2 hydrogenation to CH3OH over Fe2O3/?-Al2O3 catalysts, achieving 12% CO2 conversion and 58% CH3OH selectivity at a temperature of nearly 80 & DEG; C atm pressure. We investigated the effect of various supports and loadings of the Fe-based catalysts, as well as optimized reaction conditions. We characterized catalysts by X-ray powder diffraction (XRD), hydrogen temperature programmed reduction (H-2-TPR), CO2 and CO temperature programmed desorption (CO2/CO-TPD), high-resolution transmission electron microscopy (HRTEM), scanning transmission electron microscopy (STEM), x-ray photoelectron spectroscopy (XPS), Mossbauer, and Fourier transform infrared (FTIR). The XPS results show that the enhanced CO2 conversion and CH3OH selectivity are attributed to the chemisorbed oxygen species on Fe2O3/?-Al2O3. Furthermore, the diffuse reflectance infrared Fourier transform spectroscopy (DRIFTs) and TPD results illustrate that the catalysts with stronger CO2 adsorption capacity exhibit a higher reaction performance. In situ DRIFTS gain insight into the specific reaction pathways in the CO2/H-2 plasma. This study reveals the role of chemisorbed oxygen species as a key intermediate, and inspires to design highly efficient catalysts and expand the catalytic systems for CO2 hydrogenation to CH3OH.

How important is reactor design for CO2 conversion in warm plasmas?

Authors

Rani Vertongen,Annemie Bogaerts

Published Date

2023/6/1

In this work, we evaluated several new electrode configurations for CO2 conversion in a gliding arc plasmatron (GAP) reactor. Although the reactor design influences the performance, the best results give only slightly higher CO2 conversion than the basic GAP reactor design, which indicates that this reactor may have reached its performance limits. Moreover, we compared our results to those of four completely different plasma reactors, also operating at atmospheric pressure and with contact between the plasma and the electrodes. Surprisingly, the performance of all these warm plasmas is very similar (CO2 conversion around 10 % for an energy efficiency around 30 %). In view of these apparent performance limits regarding the reactor design, we believe further improvements should focus on other aspects, such as the post-plasma-region where the implementation of nozzles or a carbon bed are promising. We …

Challenges in unconventional catalysis

Authors

Annemie Bogaerts,Gabriele Centi,Volker Hessel,Evgeny Rebrov

Journal

Catalysis Today

Published Date

2023/8/1

Catalysis science and technology increased efforts recently to progress beyond conventional "thermal" catalysis and face the challenges of net-zero emissions and electrification of production. Nevertheless, a better gaps and opportunities analysis is necessary. This review analyses four emerging areas of unconventional or less-conventional catalysis which share the common aspect of using directly renewable energy sources: (i) plasma catalysis, (ii) catalysis for flow chemistry and process intensification, (iii) application of electromagnetic (EM) fields to modulate catalytic activity and (iv) nanoscale generation at the catalyst interface of a strong local EM by plasmonic effect. Plasma catalysis has demonstrated synergistic effects, where the outcome is higher than the sum of both processes alone. Still, the underlying mechanisms are complex, and synergy is not always obtained. There is a crucial need for a better …

Postplasma Catalytic Model for NO Production: Revealing the Underlying Mechanisms to Improve the Process Efficiency

Authors

Hamid Ahmadi Eshtehardi,Kevin Van ‘t Veer,Marie-Paule Delplancke,Francois Reniers,Annemie Bogaerts

Journal

ACS Sustainable Chemistry & Engineering

Published Date

2023/1/27

Plasma catalysis is emerging for plasma-assisted gas conversion processes. However, the underlying mechanisms of plasma catalysis are poorly understood. In this work, we present a 1D heterogeneous catalysis model with axial dispersion (i.e., accounting for back-mixing and molecular diffusion of fluid elements in the process stream in the axial direction), for plasma-catalytic NO production from N2/O2 mixtures. We investigate the concentration and reaction rates of each species formed as a function of time and position across the catalyst, in order to determine the underlying mechanisms. To obtain insights into how the performance of the process can be further improved, we also study how changes in the postplasma gas flow composition entering the catalyst bed and in the operation conditions of the catalytic stage affect the performance of NO production.

Plasma‐driven CO2 hydrogenation to CH3OH over Fe2O3/γ‐Al2O3 catalyst

Authors

Shengyan Meng,Liang Wu,Miao Liu,Zhaolun Cui,Qian Chen,Shangkun Li,Jiahui Yan,Li Wang,Xinkui Wang,Ji Qian,Hongchen Guo,Jinhai Niu,Annemie Bogaerts,Yanhui Yi

Journal

AIChE Journal

Published Date

2023/10

We report a plasma‐assisted CO2 hydrogenation to CH3OH over Fe2O3/γ‐Al2O3 catalysts, achieving 12% CO2 conversion and 58% CH3OH selectivity at a temperature of nearly 80°C atm pressure. We investigated the effect of various supports and loadings of the Fe‐based catalysts, as well as optimized reaction conditions. We characterized catalysts by X‐ray powder diffraction (XRD), hydrogen temperature programmed reduction (H2‐TPR), CO2 and CO temperature programmed desorption (CO2/CO‐TPD), high‐resolution transmission electron microscopy (HRTEM), scanning transmission electron microscopy (STEM), x‐ray photoelectron spectroscopy (XPS), Mössbauer, and Fourier transform infrared (FTIR). The XPS results show that the enhanced CO2 conversion and CH3OH selectivity are attributed to the chemisorbed oxygen species on Fe2O3/γ‐Al2O3. Furthermore, the diffuse reflectance infrared …

Sustainability analysis of methane-to-hydrogen-to-ammonia conversion by integration of high-temperature plasma and non-thermal plasma processes

Authors

Jose Osorio-Tejada,Kevin van't Veer,Nguyen Van Duc Long,Nam N Tran,Laurent Fulcheri,Bhaskar S Patil,Annemie Bogaerts,Volker Hessel

Journal

Energy Conversion and Management

Published Date

2022/10/1

The Covid era has made us aware of the need for resilient, self-sufficient, and local production. We are likely willing to pay an extra price for that quality. Ammonia (NH3) synthesis accounts for 2 % of global energy production and is an important point of attention for the development of green energy technologies. Therefore, we propose a thermally integrated process for H2 production and NH3 synthesis using plasma technology, and we evaluate its techno-economic performance and CO2 footprint by life cycle assessment (LCA). The key is to integrate energy-wise a high-temperature plasma (HTP) process, with a (low-temperature) non-thermal plasma (NTP) process and to envision their joint economic potential. This particularly means raising the temperature of the NTP process, which is typically below 100 °C, taking advantage of the heat released from the HTP process. For that purpose, we proposed the …

Enhancing CO2 conversion with plasma reactors in series and O2 removal

Authors

Rani Vertongen,Georgi Trenchev,Robbe Van Loenhout,Annemie Bogaerts

Journal

Journal of CO2 utilization

Published Date

2022/12/1

In this work, we take a crucial step towards the industrial readiness of plasma-based CO2 conversion. We present a stepwise method to study plasma reactors in series as a first approach to a recycle flow. By means of this procedure, the CO2 conversion is enhanced by a factor of 3, demonstrating that a single-pass plasma treatment performs far below the optimal capacity of the reactor. Furthermore, we explore the effect of O2 in the mixture with our flexible procedure. Addition of O2 in the mixture has a clear detrimental effect on the conversion, in agreement with other experiments in atmospheric pressure plasmas. O2 removal is however highly beneficial, demonstrating a conversion per pass that is 1.6 times higher than the standard procedure. Indeed, extracting one of the products prevents recombination reactions. Based on these insights, we discuss opportunities for further improvements, especially in the field of …

Feature Papers to Celebrate “Environmental Catalysis”—Trends & Outlook

Authors

Jean-François Lamonier,Annemie Bogaerts

Published Date

2022/6/30

This Special Issue collects three reviews, eight articles, and two communications related to the design of catalysts for environmental applications, such as the transformation of several pollutants into harmless or valuable products. Those catalysts are engineered for conventional thermal oxidation catalysis but also sequential adsorption-catalytic, photocatalytic, and plasma-catalytic oxidation processes. The review by Can et al.[1] gives a general overview of the recent use of WO3-based catalysts for DeNOx applications, total oxidation of volatile organic compounds in gas phase and gas sensors, and pollutant remediation in liquid phase (photocatalysis). The 431 references cited and discussed in this review allow the authors to highlight the potential of these materials that have acid, redox, and adsorption properties and exhibit a photo-stimulation response under visible light. The authors conclude that the use of these materials as photocatalysts is of growing interest, but their design needs to be improved to enhance their reactivity.Direct oxidation of methane to methanol (DOMTM) through heterogeneous catalysis and plasma catalysis is reviewed by Li et al.[2]. In heterogeneous catalysis, the use of appropriate oxidants (N2O, H2O2, O2 and H2O) alone or in combination significantly reduces the kinetic energy barrier of the DOMTM reaction, but the over-oxidation of methanol should be avoided. In the field of plasma catalysis an in-depth understanding of the reaction mechanisms by combining computer simulations with experiments is needed because of the lack of information on the interaction between plasma and catalysts. Such fundamental …

Effusion nozzle for energy-efficient NOx production in a rotating gliding arc plasma reactor

Authors

Senne Van Alphen,Hamid Ahmadi Eshtehardi,Colin O'Modhrain,Jens Bogaerts,Helder Van Poyer,James Creel,Marie-Paule Delplancke,Rony Snyders,Annemie Bogaerts

Journal

Chemical engineering journal

Published Date

2022/9/1

Plasma-based NOx production is of interest for sustainable N2 fixation, but more research is needed to improve its performance. One of the current limitations is recombination of NO back into N2 and O2 molecules immediately after the plasma reactor. Therefore, we developed a novel so-called “effusion nozzle”, to improve the performance of a rotating gliding arc plasma reactor for NOx production, but the same principle can also be applied to other plasma types. Experiments in a wide range of applied power, gas flow rates and N2/O2 ratios demonstrate an enhancement in NOx concentration by about 8%, and a reduction in energy cost by 22.5%. In absolute terms, we obtain NOx concentrations up to 5.9%, at an energy cost down to 2.1 MJ/mol, which are the best values reported to date in literature. In addition, we developed four complementary models to describe the gas flow, plasma temperature and plasma …

Possible synergies of nanomaterial-assisted tissue regeneration in plasma medicine: mechanisms and safety concerns

Authors

Priyanka Shaw,Patrick Vanraes,Naresh Kumar,Annemie Bogaerts

Published Date

2022/9/28

Cold atmospheric plasma and nanomedicine originally emerged as individual domains, but are increasingly applied in combination with each other. Most research is performed in the context of cancer treatment, with only little focus yet on the possible synergies. Many questions remain on the potential of this promising hybrid technology, particularly regarding regenerative medicine and tissue engineering. In this perspective article, we therefore start from the fundamental mechanisms in the individual technologies, in order to envision possible synergies for wound healing and tissue recovery, as well as research strategies to discover and optimize them. Among these strategies, we demonstrate how cold plasmas and nanomaterials can enhance each other’s strengths and overcome each other’s limitations. The parallels with cancer research, biotechnology and plasma surface modification further serve as inspiration for the envisioned synergies in tissue regeneration. The discovery and optimization of synergies may also be realized based on a profound understanding of the underlying redox- and field-related biological processes. Finally, we emphasize the toxicity concerns in plasma and nanomedicine, which may be partly remediated by their combination, but also partly amplified. A widespread use of standardized protocols and materials is therefore strongly recommended, to ensure both a fast and safe clinical implementation.

SF6 catalytic degradation in a γ‐Al2O3 packed bed plasma system: A combined experimental and theoretical study

Authors

Zhaolun Cui,Chang Zhou,Amin Jafarzadeh,Shengyan Meng,Yanhui Yi,Yufei Wang,Xiaoxing Zhang,Yanpeng Hao,Licheng Li,Annemie Bogaerts

Journal

High Voltage

Published Date

2022/12

Effective abatement of the greenhouse gas sulphur hexafluoride (SF6) waste is of great importance for the environment protection. This work investigates the size effect and the surface properties of γ‐Al2O3 pellets on SF6 degradation in a packed bed dielectric barrier discharge (PB‐DBD) system. Experimental results show that decreasing the packing size improves the filamentary discharges and promotes the ignition and the maintenance of plasma, enhancing the degradation performance at low input powers. However, too small packing pellets decrease the gas residence time and reduce the degradation efficiency, especially for the input power beyond 80 W. Besides, lowering the packing size promotes the generation of SO2, while reduces the yields of S‐O‐F products, corresponding to a better degradation. After the discharge, the pellet surface becomes smoother with the appearance of S and F elements …

Foundations of plasma catalysis for environmental applications

Authors

Annemie Bogaerts,Erik C Neyts,Olivier Guaitella,Anthony B Murphy

Published Date

2022/5/30

Plasma catalysis is gaining increasing interest for various applications, but the underlying mechanisms are still far from understood. Hence, more fundamental research is needed to understand these mechanisms. This can be obtained by both modelling and experiments. This foundations paper describes the fundamental insights in plasma catalysis, as well as efforts to gain more insights by modelling and experiments. Furthermore, it discusses the state-of-the-art of the major plasma catalysis applications, as well as successes and challenges of technology transfer of these applications.

Carbon bed post-plasma to enhance the CO2 conversion and remove O2 from the product stream

Authors

Fanny Girard-Sahun,Omar Biondo,Georgi Trenchev,Gerard van Rooij,Annemie Bogaerts

Journal

Chemical Engineering Journal

Published Date

2022/8/15

CO2 conversion by plasma technology is gaining increasing interest. We present a carbon (charcoal) bed placed after a Gliding Arc Plasmatron (GAP) reactor, to enhance the CO2 conversion, promote O/O2 removal and increase the CO fraction in the exhaust mixture. By means of an innovative (silo) system, the carbon is constantly supplied, to avoid carbon depletion upon reaction with O/O2. Using this carbon bed, the CO2 conversion is enhanced by almost a factor of two (from 7.6 to 12.6%), while the CO concentration even increases by a factor of three (from 7.2 to 21.9%), and O2 is completely removed from the exhaust mixture. Moreover, the energy efficiency of the conversion process drastically increases from 27.9 to 45.4%, and the energy cost significantly drops from 41.9 to 25.4 kJ.L−1. We also present the temperature as a function of distance from the reactor outlet, as well as the CO2, CO and O2 …

The 2022 Plasma Roadmap: low temperature plasma science and technology

Authors

Igor Adamovich,Sumit Agarwal,Eduardo Ahedo,Luıs Lemos Alves,Scott Baalrud,Natalia Babaeva,Annemie Bogaerts,Anne Bourdon,PJ Bruggeman,C Canal,Eun Ha Choi,Sylvain Coulombe,Zoltan Donkó,David B Graves,Satoshi Hamaguchi,Dirk Hegemann,M Hori,Hyun-Ha Kim,GMW Kroesen,MJ Kushner,Annarita Laricchiuta,Xingwe Li,TE Magin,S Mededovic Thagard,V Miller,AB Murphy,GS Oehrlein,N Puac,RM Sankaran,Seiji Samukawa,M Shiratani,M Šimek,Nikolai Tarasenko,K Terashima,Edward Thomas Jr,J Trieschmann,S Tsikata,MM Turner,IJ Van Der Walt,MCM Van De Sanden,Thomas von Woedtke

Journal

Journal of Physics D: Applied Physics

Published Date

2022/9/15

The 2022 Roadmap is the next update in the series of Plasma Roadmaps published by Journal of Physics D with the intent to identify important outstanding challenges in the field of low-temperature plasma (LTP) physics and technology. The format of the Roadmap is the same as the previous Roadmaps representing the visions of 41 leading experts representing 21 countries and five continents in the various sub-fields of LTP science and technology. In recognition of the evolution in the field, several new topics have been introduced or given more prominence. These new topics and emphasis highlight increased interests in plasma-enabled additive manufacturing, soft materials, electrification of chemical conversions, plasma propulsion, extreme plasma regimes, plasmas in hypersonics, data-driven plasma science and technology and the contribution of LTP to combat COVID-19. In the last few decades, LTP …

The pro-and anti-tumoral properties of gap junctions in cancer and their role in therapeutic strategies

Authors

Maria C Oliveira,Hanne Verswyvel,Evelien Smits,Rodrigo M Cordeiro,Annemie Bogaerts,Abraham Lin

Published Date

2022/11/1

Gap junctions (GJs), essential structures for cell-cell communication, are made of two hemichannels (commonly called connexons), one on each adjacent cell. Found in almost all cells, GJs play a pivotal role in many physiological and cellular processes, and have even been linked to the progression of diseases, such as cancer. Modulation of GJs is under investigation as a therapeutic strategy to kill tumor cells. Furthermore, GJs have also been studied for their key role in activating anti-cancer immunity and propagating radiation- and oxidative stress-induced cell death to neighboring cells, a process known as the bystander effect. While, gap junction (GJ)-based therapeutic strategies are being developed, one major challenge has been the paradoxical role of GJs in both tumor progression and suppression, based on GJ composition, cancer factors, and tumoral context. Therefore, understanding the mechanisms of …

Energy‐Efficient Small‐Scale Ammonia Synthesis Process with Plasma‐Enabled Nitrogen Oxidation and Catalytic Reduction of Adsorbed NOx

Authors

Lander Hollevoet,Elise Vervloessem,Yury Gorbanev,Anton Nikiforov,Nathalie De Geyter,Annemie Bogaerts,Johan A Martens

Journal

ChemSusChem

Published Date

2022/5/20

Industrial ammonia production without CO2 emission and with low energy consumption is one of the technological grand challenges of this age. Current Haber‐Bosch ammonia mass production processes work with a thermally activated iron catalyst needing high pressure. The need for large volumes of hydrogen gas and the continuous operation mode render electrification of Haber‐Bosch plants difficult to achieve. Electrochemical solutions at low pressure and temperature are faced with the problematic inertness of the nitrogen molecule on electrodes. Direct reduction of N2 to ammonia is only possible with very reactive chemicals such as lithium metal, the regeneration of which is energy intensive. Here, the attractiveness of an oxidative route for N2 activation was presented. N2 conversion to NOx in a plasma reactor followed by reduction with H2 on a heterogeneous catalyst at low pressure could be an energy …

Cytoglobin silencing promotes melanoma malignancy but sensitizes for ferroptosis and pyroptosis therapy response

Authors

Joey De Backer,Darko Maric,Karim Zuhra,Annemie Bogaerts,Csaba Szabo,Wim Vanden Berghe,David Hoogewijs

Journal

Antioxidants

Published Date

2022/8/10

Despite recent advances in melanoma treatment, there are still patients that either do not respond or develop resistance. This unresponsiveness and/or acquired resistance to therapy could be explained by the fact that some melanoma cells reside in a dedifferentiated state. Interestingly, this dedifferentiated state is associated with greater sensitivity to ferroptosis, a lipid peroxidation-reliant, iron-dependent form of cell death. Cytoglobin (CYGB) is an iron hexacoordinated globin that is highly enriched in melanocytes and frequently downregulated during melanomagenesis. In this study, we investigated the potential effect of CYGB on the cellular sensitivity towards (1S, 3R)-RAS-selective lethal small molecule (RSL3)-mediated ferroptosis in the G361 melanoma cells with abundant endogenous expression. Our findings show that an increased basal ROS level and higher degree of lipid peroxidation upon RSL3 treatment contribute to the increased sensitivity of CYGB knockdown G361 cells to ferroptosis. Furthermore, transcriptome analysis demonstrates the enrichment of multiple cancer malignancy pathways upon CYGB knockdown, supporting a tumor-suppressive role for CYGB. Remarkably, CYGB knockdown also triggers activation of the NOD-, LRR- and pyrin domain-containing protein 3 (NLRP3) inflammasome and subsequent induction of pyroptosis target genes. Altogether, we show that silencing of CYGB expression modulates cancer therapy sensitivity via regulation of ferroptosis and pyroptosis cell death signaling pathways.

Plasma-catalytic ammonia decomposition using a packed-bed dielectric barrier discharge reactor

Authors

JA Andersen,JM Christensen,M Østberg,A Bogaerts,AD Jensen

Journal

international journal of hydrogen energy

Published Date

2022/9/1

Plasma-catalytic ammonia decomposition as a method for producing hydrogen was studied in a packed-bed dielectric barrier discharge (DBD) reactor at ambient pressure and a fixed plasma power. The influence of packing the plasma zone with various dielectric materials, typically used as catalyst supports, was examined. At conditions (21 W, 75 Nml/min NH3) where an NH3 conversion of 5% was achieved with plasma alone, an improved decomposition was found when introducing dielectric materials with dielectric constants between 4 and 30. Of the tested materials, MgAl2O4 yielded the highest conversion (15.1%). The particle size (0.3–1.4 mm) of the MgAl2O4 packing was found to have a modest influence on the conversion, which dropped from 15.1% to 12.6% with increasing particle size. Impregnation of MgAl2O4 with different metals was found to decrease the NH3 conversion, with the Ni impregnation still …

Grand challenges in low temperature plasmas

Authors

XinPei Lu,Peter J Bruggeman,Stephan Reuter,George Naidis,Annemie Bogaerts,Mounir Laroussi,Michael Keidar,Eric Robert,Jean-Michel Pouvesle,DaWei Liu,Kostya Ostrikov

Published Date

2022/10/14

Low temperature plasmas (LTPs) enable to create a highly reactive environment at near ambient temperatures due to the energetic electrons with typical kinetic energies in the range of 1 to 10 eV (1 eV = 11600K), which are being used in applications ranging from plasma etching of electronic chips and additive manufacturing to plasma-assisted combustion. LTPs are at the core of many advanced technologies. Without LTPs, many of the conveniences of modern society would simply not exist. New applications of LTPs are continuously being proposed. Researchers are facing many grand challenges before these new applications can be translated to practice. In this paper, we will discuss the challenges being faced in the field of LTPs, in particular for atmospheric pressure plasmas, with a focus on health, energy and sustainability.

Catalyst-free single-step plasma reforming of CH4 and CO2 to higher value oxygenates under ambient conditions

Authors

Yaolin Wang,Yanzhen Chen,Jonathan Harding,Hongyuan He,Annemie Bogaerts,Xin Tu

Journal

Chemical Engineering Journal

Published Date

2022/12/15

Direct conversion of CH4 and CO2 to liquid fuels and chemicals under mild conditions is appealing for biogas conversion and utilization but challenging due to the inert nature of both gases. Herein, we report a promising plasma process for the catalyst-free single-step conversion of CH4 and CO2 into higher value oxygenates (i.e., methanol, acetic acid, ethanol, and acetone) at ambient pressure and room temperature using a water-cooled dielectric barrier discharge (DBD) reactor, with methanol being the main liquid product. The distribution of liquid products could be tailored by tuning the discharge power, reaction temperature and residence time. Lower discharge powers (10–15 W) and reaction temperatures (5–20 °C) were favourable for the production of liquid products, achieving the highest methanol selectivity of 43% at 5 °C and 15 W. A higher discharge power and reaction temperature, on the other hand …

Dry reforming of methane in a nanosecond repetitively pulsed discharge: chemical kinetics modeling

Authors

Li Zhang,Stijn Heijkers,Weizong Wang,Luca Matteo Martini,Paolo Tosi,Dezheng Yang,Zhi Fang,Annemie Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2022/5/19

Nanosecond pulsed discharge plasma shows a high degree of non-equilibrium, and exhibits relatively high conversions in the dry reforming of methane. To further improve the application, a good insight of the underlying mechanisms is desired. We developed a chemical kinetics model to explore the underlying plasma chemistry in nanosecond pulsed discharge. We compared the calculated conversions and product selectivities with experimental results, and found reasonable agreement in a wide range of specific energy input. Hence, the chemical kinetics model is able to provide insight in the underlying plasma chemistry. The modeling results predict that the most important dissociation reaction of CO 2 and CH 4 is electron impact dissociation. C 2 H 2 is the most abundant hydrocarbon product, and it is mainly formed upon reaction of two CH 2 radicals. Furthermore, the vibrational excitation levels of CO 2 …

Insights into the limitations to vibrational excitation of CO2: validation of a kinetic model with pulsed glow discharge experiments

Authors

Omar Biondo,Chloé Fromentin,Tiago Silva,Vasco Guerra,Gerard van Rooij,Annemie Bogaerts

Journal

Plasma Sources Science and Technology

Published Date

2022/8/10

Vibrational excitation represents an efficient channel to drive the dissociation of CO 2 in a non-thermal plasma. Its viability is investigated in low-pressure pulsed discharges, with the intention of selectively exciting the asymmetric stretching mode, leading to stepwise excitation up to the dissociation limit of the molecule. Gas heating is crucial for the attainability of this process, since the efficiency of vibration–translation (V–T) relaxation strongly depends on temperature, creating a feedback mechanism that can ultimately thermalize the discharge. Indeed, recent experiments demonstrated that the timeframe of V–T non-equilibrium is limited to a few milliseconds at ca. 6 mbar, and shrinks to the μs-scale at 100 mbar. With the aim of backtracking the origin of gas heating in pure CO 2 plasma, we perform a kinetic study to describe the energy transfers under typical non-thermal plasma conditions. The validation of our …

Cytoglobin inhibits non-thermal plasma-induced apoptosis in melanoma cells through regulation of the NRF2-mediated antioxidant response

Authors

Joey De Backer,Abraham Lin,Wim Vanden Berghe,Annemie Bogaerts,David Hoogewijs

Journal

Redox Biology

Published Date

2022/9/1

Melanoma arises from pigment-producing cells called melanocytes located in the basal layers of the epidermis of the skin. Cytoglobin (CYGB) is a ubiquitously expressed hexacoordinated globin that is highly enriched in melanocytes and frequently downregulated during melanomagenesis. Previously, we showed that non-thermal plasma (NTP)-produced reactive oxygen and nitrogen species (RONS) lead to the formation of an intramolecular disulfide bridge that would allow CYGB to function as a redox-sensitive protein. Here, we investigate the cytotoxic effect of indirect NTP treatment in two melanoma cell lines with divergent endogenous CYGB expression levels, and we explore the role of CYGB in determining treatment outcome. Our findings are consistent with previous studies supporting that NTP cytotoxicity is mediated through the production of RONS and leads to apoptotic cell death in melanoma cells …

Producing oxygen and fertilizer with the Martian atmosphere by using microwave plasma

Authors

Sean Kelly,Claudia Verheyen,Aidan Cowley,Annemie Bogaerts

Journal

Chem

Published Date

2022/10/13

We explore the potential of microwave (MW)-plasma-based in situ utilization of the Martian atmosphere with a focus on the novel possibility of fixing N2 for fertilizer production. Conversion in a simulant plasma (i.e., ∼96% CO2, ∼2% N2, and ∼2% Ar), performed under energy conditions similar to those of the Mars Oxygen In Situ Resource Utilization Experiment (MOXIE), currently on board NASA's Perseverance rover, demonstrates that O/O2 formed through CO2 dissociation facilitates the fixation of the N2 fraction via oxidation to NOx. Promising production rates for O2, CO, and NOx of 47.0, 76.1, and 1.25 g/h, respectively, are recorded with corresponding energy costs of 0.021, 0.013, and 0.79 kWh/g, respectively. Notably, O2 production rates are ∼30 times higher than those demonstrated by MOXIE, while the NOx production rate represents an ∼7% fixation of the N2 fraction present in the Martian atmosphere …

The 2021 release of the Quantemol database (QDB) of plasma chemistries and reactions

Authors

Jonathan Tennyson,Sebastian Mohr,Martin Hanicinec,Anna Dzarasova,Carrick Smith,Sarah Waddington,Bingqing Liu,Luís L Alves,Klaus Bartschat,Annemie Bogaerts,Sebastian U Engelmann,Timo Gans,Andrew R Gibson,Satoshi Hamaguchi,Kathryn R Hamilton,Christian Hill,Deborah O’Connell,Shahid Rauf,Kevin van’t Veer,Oleg Zatsarinny

Journal

Plasma Sources Science and Technology

Published Date

2022/12/9

The Quantemol database (QDB) provides cross sections and rates of processes important for plasma models; heavy particle collisions (chemical reactions) and electron collision processes are considered. The current version of QDB has data on 28 917 processes between 2485 distinct species plus data for surface processes. These data are available via a web interface or can be delivered directly to plasma models using an application program interface; data are available in formats suitable for direct input into a variety of popular plasma modeling codes including HPEM, COMSOL, ChemKIN, CFD-ACE+, and VisGlow. QDB provides ready assembled plasma chemistries plus the ability to build bespoke chemistries. The database also provides a Boltzmann solver for electron dynamics and a zero-dimensional model. Thesedevelopments, use cases involving O 2, Ar/NF 3, Ar/NF 3/O 2, and He/H 2 O/O 2 chemistries …

Modulating the antioxidant response for better oxidative stress-inducing therapies: How to take advantage of two sides of the same medal?

Authors

Priyanka Shaw,Naresh Kumar,Maxime Sahun,Evelien Smits,Annemie Bogaerts,Angela Privat-Maldonado

Published Date

2022/3/31

Oxidative stress-inducing therapies are characterized as a specific treatment that involves the production of reactive oxygen and nitrogen species (RONS) by external or internal sources. To protect cells against oxidative stress, cells have evolved a strong antioxidant defense system to either prevent RONS formation or scavenge them. The maintenance of the redox balance ensures signal transduction, development, cell proliferation, regulation of the mechanisms of cell death, among others. Oxidative stress can beneficially be used to treat several diseases such as neurodegenerative disorders, heart disease, cancer, and other diseases by regulating the antioxidant system. Understanding the mechanisms of various endogenous antioxidant systems can increase the therapeutic efficacy of oxidative stress-based therapies, leading to clinical success in medical treatment. This review deals with the recent novel findings of various cellular endogenous antioxidant responses behind oxidative stress, highlighting their implication in various human diseases, such as ulcers, skin pathologies, oncology, and viral infections such as SARS-CoV-2.

Special issue on CO2utilization with plasma technology

Authors

Sirui Li,Changjun Liu,Annemie Bogaerts,Fausto Gallucci

Journal

Journal of CO2 Utilization

Published Date

2022/7

Plasma technology has advanced significantly in recent years, with application ranging from chemical conversion, to surface treatment, material development and several other fields. Special attention has been paid to the development of possible novel approaches for the conversion of chemicals in a more sustainable way. Plasma technology offers advantages over thermochemical routes such as high process versatility, mild reaction condition, one-step synthesis, fast reaction and instant control. More importantly, it can be easily combined with electricity generated from various renewable sources and is suitable for energy storage via the conversion of intermittent renewable energy into carbon-neutral fuels or other chemicals. In recent years, there has been a growing interest in the development of plasma technology for CO2 utilization. Investigation on different reactions such as CO2 splitting, dry reforming of methane (DRM) and CO2 hydrogenation with different types of plasma reactors and catalysts have been reported by researchers worldwide. Although technological maturity still needs to be increased, the potential of plasma has been well-recognized by the scientific community and industry. More research output in the future is expected as a result of intensive research activities and various kinds of investment. In this context, we present this special issue on CO2 utilization with plasma technology, which collects 22 articles, covering topics in related areas such as plasma reactor design, plasma catalysis, plasmamaterial interaction, modeling and new ideas for possible applications.

The effect of local non‐thermal plasma therapy on the cancer‐immunity cycle in a melanoma mouse model

Authors

Abraham Lin,Joey De Backer,Delphine Quatannens,Bart Cuypers,Hanne Verswyvel,Edgar Cardenas De La Hoz,Bart Ribbens,Vasiliki Siozopoulou,Jonas Van Audenaerde,Elly Marcq,Filip Lardon,Kris Laukens,Steve Vanlanduit,Evelien Smits,Annemie Bogaerts

Journal

Bioengineering & Translational Medicine

Published Date

2022/9

Melanoma remains a deadly cancer despite significant advances in immune checkpoint blockade and targeted therapies. The incidence of melanoma is also growing worldwide, which highlights the need for novel treatment options and strategic combination of therapies. Here, we investigate non‐thermal plasma (NTP), an ionized gas, as a promising, therapeutic option. In a melanoma mouse model, direct treatment of tumors with NTP results in reduced tumor burden and prolonged survival. Physical characterization of NTP treatment in situ reveals the deposited NTP energy and temperature associated with therapy response, and whole transcriptome analysis of the tumor identified several modulated pathways. NTP treatment also enhances the cancer‐immunity cycle, as immune cells in both the tumor and tumor‐draining lymph nodes appear more stimulated to perform their anti‐cancer functions. Thus, our data …

See List of Professors in Annemie Bogaerts University(Universiteit Antwerpen)

Annemie Bogaerts FAQs

What is Annemie Bogaerts's h-index at Universiteit Antwerpen?

The h-index of Annemie Bogaerts has been 74 since 2020 and 100 in total.

What are Annemie Bogaerts's top articles?

The articles with the titles of

NH3 decomposition for H2 production by thermal and plasma catalysis using bimetallic catalysts

Electrical Stability and Performance of a Nitrogen–Oxygen Atmospheric Pressure Gliding Arc Plasma

Accurate Reaction Probabilities for Translational Energies on Both Sides of the Barrier of Dissociative Chemisorption on Metal Surfaces

Plasma-Catalytic Direct Oxidation of Methane to Methanol Over Cu-Mor: Revealing the Zeolite-Confined Cu2+ Active Sites

Modelling the dynamics of hydrogen synthesis from methane in nanosecond‐pulsed plasmas

Coupling the COST reference plasma jet to a microfluidic device: a computational study

Feasibility study of a small-scale fertilizer production facility based on plasma nitrogen fixation

Plasma catalysis in ammonia production and decomposition: Use it, or lose it?

...

are the top articles of Annemie Bogaerts at Universiteit Antwerpen.

What are Annemie Bogaerts's research interests?

The research interests of Annemie Bogaerts are: plasma chemistry, CO2 conversion, plasma catalysis, plasma medicine, modeling

What is Annemie Bogaerts's total number of citations?

Annemie Bogaerts has 39,475 citations in total.

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