![]() | Importance of plasma discharge characteristics in plasma catalysis: Dry reforming of methane vs. ammonia synthesis. |
![]() | Is a catalyst always beneficial in plasma catalysis? Insights from the many physical and chemical interactions. B. Loenders, R. Michiels and A. Bogaerts J. Energy Chem., 85, 501-533 (2023) and supplementary information |
![]() | Foundations of plasma catalysis for environmental applications. A. Bogaerts, E.C. Neyts, O. Guaitella and A.B. Murphy |
![]() | Plasma catalysis for ammonia synthesis: A microkinetic modeling study on the contributions of Eley−Rideal reactions. Y. Engelmann, K. van ’t Veer, Y. Gorbanev, E.C. Neyts, W. F. Schneider and A. Bogaerts ACS Sust. Chem. Eng., 9, 13151−13163 (2021) and its supporting information.
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![]() | Selective oxidation of CH4 to CH3OH through plasma catalysis: Insights from catalyst characterization and chemical kinetics modelling. Y. Yi, S. Li, Z. Cui, Y. Hao, Y. Zhang, L. Wang, P. Liu, X. Tu, X. Xu, H. Guo, A. Bogaerts |
![]() | The 2020 plasma catalysis roadmap. |
![]() | Burning questions of plasma catalysis: Answers by modeling. |
![]() | Propagation of a plasma streamer in catalyst pores. |
![]() | Effect of plasma-induced surface charging on catalytic processes: application to CO2 activation. |
![]() | Streamer propagation in a packed bed plasma reactor for plasma catalysis applications. |
![]() | Plasma catalysis: synergistic effects at the nanoscale. |
![]() | Can plasma be formed in catalyst pores? A modeling investigation. |
![]() | Understanding plasma catalysis through modelling and simulation - a review. |