电催化剂
化学
电化学
法拉第效率
产量(工程)
无机化学
氨生产
可逆氢电极
氮气
催化作用
固氮酶
氨
吸附
光化学
固氮
材料科学
电极
有机化学
物理化学
参比电极
冶金
作者
Guohua Li,Lijuan Niu,Zhixue Ma,Li An,Dan Qu,Dandan Wang,Xiayan Wang,Zaicheng Sun
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2022-03-29
卷期号:15 (7): 5940-5945
被引量:11
标识
DOI:10.1007/s12274-022-4262-1
摘要
To perform the electrochemical nitrogen reduction reaction (NRR) under milder conditions for sustainable ammonia production, electrocatalysts should exhibit high selectivity, activity, and durability. However, the key restrictions are the highly stable N≡N triple bond and the competitive hydrogen evolution reaction (HER), which make it difficult to adsorb and activate N2 on the surface of electrocatalysts, leading to a low ammonia yield and Faraday efficiency. Inspired by the enzymatic nitrogenase process and using the Fe-Mo as the active center, here we report supported Fe2Mo3O8/XC-72 as an effective and durable electrocatalyst for the NRR. Fe2Mo3O8/XC-72 exhibited NRR activity with an NH3 yield of 30.4 µg·h−1·mg−1 (−0.3 V) and a Faraday efficiency of 8.2% (−0.3 V). Theoretical calculations demonstrated that the electrocatalytic nitrogen fixation mechanism involved the Fe atom in the Fe2Mo3O8/XC-72 electrocatalyst acting as the main active site in the enzymatic pathway (*NH2 → *NH3), which activated nitrogen molecules and promoted the NRR performance.
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