催化作用
质子化
动力学
电合成
材料科学
氧化还原
法拉第效率
氨生产
电化学
动力学同位素效应
无机化学
化学
物理化学
电极
离子
氘
有机化学
量子力学
物理
作者
Yan Kong,Lei Wu,Xiaoxuan Yang,Yan Li,Sixing Zheng,Bin Yang,Zhongjian Li,Qinghua Zhang,Shaodong Zhou,Lecheng Lei,Gang Wu,Yang Hou
标识
DOI:10.1002/adfm.202205409
摘要
Abstract Electrocatalysts play a vital role in electroreduction of N 2 to NH 3 (NRR); however, large‐scale industrial application of electrochemical NRR is still limited by low selectivity and poor activity, owing to the sluggish reaction kinetics. Herein, a high‐performance NRR catalyst consisting of atomically dispersed iron single site embedded in porous nitrogen‐doped carbon nanofibers with abundant carbon defects (D‐FeN/C) is reported. The D‐FeN/C catalyst achieves a remarkably high NH 3 yield rate of ≈24.8 µg h −1 mg cat −1 and Faradaic efficiency of 15.8% at −0.4 V in alkaline electrolyte, which outperforms almost all reported Fe‐based NRR catalysts. Structural characterization manifests that the isolated Fe center is coordinated with four N atoms and assisted by extra carbon defects. In situ attenuated total reflectance‐Fourier transform infrared results and kinetics isotope effects demonstrate that the intrinsic carbon defects dramatically enhance the water dissociation process and accelerate the protonation kinetics of D‐FeN/C for NRR. Theoretical investigations unveil atomic Fe‐N 4 catalytic sites together with intrinsic carbon defects synergistically reduce the energy barrier of the protonation process and promote the proton‐coupled reaction kinetics, thus boosting the whole NRR catalytic performance.
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