氨
化学
催化作用
氮气
产量(工程)
亚硝酸盐
电化学
无机化学
法拉第效率
硝酸盐
铜
氨生产
电极
材料科学
有机化学
物理化学
冶金
作者
Xiaoqing Yan,Ying Zhao,Yuzhe Zhang,Bowen Wang,H-Z Fan,Honghui Ou,Xuelan Hou,Qizhong Huang,Huagui Hu,Guidong Yang
摘要
Abstract Utilizing N₂ from the air and water for the electrocatalytic nitrogen reduction reaction shows promise for NH₃ synthesis under mild conditions. However, the chemical stability of N₂ and the thermodynamic limitations of NH₃ synthesis hinder its effectiveness. Herein, we integrated a specially designed Cu nanowire catalyst with a five‐fold twin structure (T‐CuNW) into an electrocatalytic system, combining electrocatalytic nitrogen reduction with nonthermal plasma‐assisted N₂ activation. This work achieved an NH₃ yield of 45 mg·mg cat. −1 ·h −1 and a Faradaic efficiency of over 95% at −0.5 V versus RHE after a 90‐h stability test. In situ characterization revealed that the T‐CuNW's twin structure plays a crucial role for the generation of a large quantity of H ads , essential for the hydrogenation of nitrate intermediates, particularly nitrite (NO₂ − ). This enhanced hydrogenation process significantly contributes to the high performance of the ammonia synthesis system.
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