Yongfu Li, Haitao Li, Yanjiang Cai, Xiao Liang, Haiyan Wei, Bing Yu, Hao Li, Jiawei Xu, Zhen Qiu, Junkai Xia, Huajun Feng, Hai Xiang, Zechao Zhuang, Dingsheng Wang
Journal: Angewandte Chemie (International ed. in English) 2024;63(45):e202412740
PMID: 39107257
The production of ammonia (NH) from nitrogen sources involves competitive adsorption of different intermediates and multiple electron and proton transfers, presenting grand challenges in catalyst design. In nature nitrogenases reduce dinitrogen to NH using two component proteins, in which electrons and protons are delivered from Fe protein to the active site in MoFe protein for transfer to the bound N. We draw inspiration from this structural enzymology, and design a two-component metal-sulfur-carbon (M-S-C) catalyst composed of sulfur-doped carbon-supported ruthenium (Ru) single atoms (SAs) and nanoparticles (NPs) for the electrochemical reduction of nitrate (NO ) to NH. The catalyst demonstrates a remarkable NH yield rate of ~37 mg L h and a Faradaic efficiency of ~97 % for over 200 hours, outperforming those consisting solely of SAs or NPs, and even surpassing most reported electrocatalysts. Our experimental and theoretical investigations reveal the critical role of Ru SAs with the coordination of S in promoting the formation of the HONO intermediate and the subsequent reduction reaction over the NP-surface nearby. Such process results in a more energetically accessible pathway for NO reduction on Ru NPs co-existing with SAs. This study proves a better understanding of how M-S-Cs act as a synthetic nitrogenase mimic during ammonia synthesis, and contributes to the future mechanism-based catalyst design.
© 2024 Wiley-VCH GmbH.
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