材料科学
产量(工程)
碳化物
化学工程
碳化钛
电催化剂
钛
催化作用
无定形固体
硼
纳米技术
电化学
冶金
化学
结晶学
物理化学
电极
有机化学
工程类
生物化学
作者
Jie Liang,Pengyu Liu,Qinye Li,Tingshuai Li,Luchao Yue,Yongsong Luo,Qian Liu,Na Li,Bo Tang,Abdulmohsen Ali Alshehri,Imran Shakir,Philips O. Agboola,Chenghua Sun,Xuping Sun
标识
DOI:10.1002/anie.202202087
摘要
Electrocatalytic NO reduction is regarded as an attractive strategy to degrade the NO contaminant into useful NH3 , but the lack of efficient and stable electrocatalysts to facilitate such multiple proton-coupled electron-transfer processes impedes its applications. Here, we report on developing amorphous B2.6 C supported on a TiO2 nanoarray on a Ti plate (a-B2.6 C@TiO2 /Ti) as an NH3 -producing nanocatalyst with appreciable activity and durability toward the NO electroreduction. It shows a yield of 3678.6 μg h-1 cm-2 and a FE of 87.6 %, superior to TiO2 /Ti (563.5 μg h-1 cm-2 , 42.6 %) and a-B2.6 C/Ti (2499.2 μg h-1 cm-2 , 85.6 %). An a-B2.6 C@TiO2 /Ti-based Zn-NO battery achieves a power density of 1.7 mW cm-2 with an NH3 yield of 1125 μg h-1 cm-2 . An in-depth understanding of catalytic mechanisms is gained by theoretical calculations.
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