TY - JOUR
T1 - Green chemical pathway of N2 fixation
T2 - perspectives from plasma modeling
AU - Hong, Jungmi
AU - Zhang, Tianqi
AU - Sun, Jing
AU - Zhou, Renwu
AU - Zhou, Rusen
AU - Dou, Liguang
AU - Masood, Hassan
AU - Lovell, Emma C.
AU - Zhang, Shuai
AU - Ashford, Bryony
AU - Shao, Tao
AU - Murphy, Anthony B.
AU - Ostrikov, Kostya
AU - Jalili, Ali Rouhollah
AU - Cullen, Patrick J.
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - Given its significant environmental and economic impact, substantial research has been dedicated to improving the Haber–Bosch process. Leveraging the advantages of renewable energy sources and sustainable feedstocks, plasma catalysis is emerging as a promising green technology for small-scale, onsite nitrogen (N₂) fixation. However, current plasma-catalysis applications for nitrogen fixation face several challenges. These include high energy consumption for hydrogen (H2) production prior to ammonia synthesis, low energy efficiency, and a limited understanding of the underlying mechanisms. In this study, we compare two green chemical pathways for plasma catalysis in NH3 and NOx production and their effective storage in water from a plasma chemistry modeling perspective. Our model incorporates both electron and vibrational kinetics, along with updated surface reactions based on Density Functional Theory (DFT) calculations. These calculations consider catalytic ruthenium (Ru) on MgO supports and non-catalytic SiO2 as a reference for ammonia synthesis and titanium dioxide (TiO2) for NOx synthesis. We will evaluate and discuss key intermediates and pathways for producing high-density NH3 and NOx, and suggest opportunities for further improvement.
AB - Given its significant environmental and economic impact, substantial research has been dedicated to improving the Haber–Bosch process. Leveraging the advantages of renewable energy sources and sustainable feedstocks, plasma catalysis is emerging as a promising green technology for small-scale, onsite nitrogen (N₂) fixation. However, current plasma-catalysis applications for nitrogen fixation face several challenges. These include high energy consumption for hydrogen (H2) production prior to ammonia synthesis, low energy efficiency, and a limited understanding of the underlying mechanisms. In this study, we compare two green chemical pathways for plasma catalysis in NH3 and NOx production and their effective storage in water from a plasma chemistry modeling perspective. Our model incorporates both electron and vibrational kinetics, along with updated surface reactions based on Density Functional Theory (DFT) calculations. These calculations consider catalytic ruthenium (Ru) on MgO supports and non-catalytic SiO2 as a reference for ammonia synthesis and titanium dioxide (TiO2) for NOx synthesis. We will evaluate and discuss key intermediates and pathways for producing high-density NH3 and NOx, and suggest opportunities for further improvement.
KW - Ammonia production
KW - NO synthesis
KW - Nitrogen fixation
KW - Plasma catalysis
KW - Plasma kinetic modeling
UR - https://www.scopus.com/pages/publications/105000815052
U2 - 10.1007/s41614-025-00189-4
DO - 10.1007/s41614-025-00189-4
M3 - 文章
AN - SCOPUS:105000815052
SN - 2367-3192
VL - 9
JO - Reviews of Modern Plasma Physics
JF - Reviews of Modern Plasma Physics
IS - 1
M1 - 14
ER -