材料科学
催化作用
串联
法拉第效率
化学工程
吸附
氨生产
纳米纤维
氨
电子转移
氧化还原
产量(工程)
微型反应器
氢
解吸
电化学
纳米技术
无机化学
制氢
石墨烯
X射线吸收光谱法
吸收(声学)
反应中间体
X射线光电子能谱
可逆氢电极
电子能量损失谱
作者
Mengxiao Zhong,Jinfeng Li,Siqi Zhang,Li Deng,Mingming Wang,Meijiao Xu,Lin Huang,Yun Zhu,Mingbin Gao,Xiaofeng Lu
摘要
ABSTRACT The electrocatalytic nitrate (NO 3 − ) reduction reaction (NO 3 RR) to ammonia (NH 3 ) is a sustainable alternative to the energy‐intensive Haber–Bosch process; however, its efficiency is hampered by its complex multi‐step kinetics. Herein, a rational electrospinning‐calcination strategy is employed to fabricate dual‐content tandem CuCoO x nanofibers (NFs) featuring an interconnected network composed of CuCoO x hollow cubes for the NO 3 RR. The resultant tandem CuCoO x NFs achieve a remarkable Faradaic efficiency for NH 3 of 98.7 ± 0.4% at −0.4 V versus RHE and a maximum NH 3 yield rate of 109.7 ± 1.1 mg cm −2 h −1 at −1.0 V versus RHE, outperforming a host of benchmark NO 3 RR electrocatalysts. In situ X‐ray absorption spectroscopy reveals dynamic dual‐site reconstruction during NO 3 RR, wherein the initial CuCoO x transforms into a Cu/Co(OH) 2 heterostructure, identified as the true active phase. Combined mechanistic and theoretical studies elucidate that the reconstructed interface induces surface electron redistribution, which optimizes intermediate adsorption and lowers the energy barrier of the rate‐determining step. Furthermore, it facilitates proton supply to Co sites and enables spontaneous hydrogen spillover to adjacent Cu sites, synergistically accelerating the reaction kinetics. The practical potential of this catalyst is further demonstrated in a flow‐cell reactor for NH 3 production and in a high‐performance Zn‐NO 3 − battery.
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