TY - JOUR
T1 - Insights into Plasma-Catalytic Dry Reforming of Methane over Nickel Foam-Supported Transition-Metal Catalysts
T2 - Performance Optimization and Mechanism Exploration
AU - Chen, Bohan
AU - Feng, Yue
AU - Liu, Zhijie
AU - Gao, Yuting
AU - Zhao, Xuewen
AU - Li, Xin
AU - Li, Tianyu
AU - Gan, Dingwei
AU - Zhou, Rusen
AU - Xiao, Liangping
AU - Zhang, Jinying
AU - Tu, Xin
AU - Zhou, Renwu
N1 - Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/12/24
Y1 - 2025/12/24
N2 - Plasma-catalytic dry reforming of methane (DRM) enables the simultaneous mitigation of greenhouse gases and the production of value-added chemicals; however, achieving a high conversion efficiency alongside controlled product selectivity remains challenging. Here, a water-grounded dielectric barrier discharge (DBD) reactor integrated with nickel foam (NF)-supported transition-metal catalysts (NiAl/NF, CoAl/NF, CuAl/NF) was employed to investigate CO2 and CH4 conversion and elucidate reaction mechanisms. Combined in situ FTIR, physicochemical characterization, and plasma diagnostics revealed that the release of lattice oxygen and its reaction with CHx intermediates are pivotal for catalytic enhancement. NiAl/NF delivered 33.8 and 30.1% higher CO2 and CH4 conversion, respectively, over plasma-only discharge, accompanied by a 91.3% increase in total liquid product selectivity. Selective methanol formation reached 4.0% (74.6% higher than plasma-only), while CoAl/NF achieved 10.4% acetic acid selectivity (96.7% higher). Mechanistic analysis indicated that excessive bidentate carbonate accumulation can suppress reaction pathways, underscoring the decisive role of the catalyst structure and active sites. This work demonstrates that tailoring active metal species enables targeted oxygenate synthesis in low-temperature plasma DRM, providing both mechanistic insight and a practical strategy to optimize the conversion efficiency and selectivity.
AB - Plasma-catalytic dry reforming of methane (DRM) enables the simultaneous mitigation of greenhouse gases and the production of value-added chemicals; however, achieving a high conversion efficiency alongside controlled product selectivity remains challenging. Here, a water-grounded dielectric barrier discharge (DBD) reactor integrated with nickel foam (NF)-supported transition-metal catalysts (NiAl/NF, CoAl/NF, CuAl/NF) was employed to investigate CO2 and CH4 conversion and elucidate reaction mechanisms. Combined in situ FTIR, physicochemical characterization, and plasma diagnostics revealed that the release of lattice oxygen and its reaction with CHx intermediates are pivotal for catalytic enhancement. NiAl/NF delivered 33.8 and 30.1% higher CO2 and CH4 conversion, respectively, over plasma-only discharge, accompanied by a 91.3% increase in total liquid product selectivity. Selective methanol formation reached 4.0% (74.6% higher than plasma-only), while CoAl/NF achieved 10.4% acetic acid selectivity (96.7% higher). Mechanistic analysis indicated that excessive bidentate carbonate accumulation can suppress reaction pathways, underscoring the decisive role of the catalyst structure and active sites. This work demonstrates that tailoring active metal species enables targeted oxygenate synthesis in low-temperature plasma DRM, providing both mechanistic insight and a practical strategy to optimize the conversion efficiency and selectivity.
UR - https://www.scopus.com/pages/publications/105025584636
U2 - 10.1021/acs.iecr.5c03472
DO - 10.1021/acs.iecr.5c03472
M3 - 文章
AN - SCOPUS:105025584636
SN - 0888-5885
VL - 64
SP - 24461
EP - 24477
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 51
ER -