电解质
无机化学
催化作用
法拉第效率
化学
电化学
氨生产
氨
硝酸盐
氧化物
选择性
氧化铜
铜
电极
有机化学
物理化学
生物化学
作者
Weidong Wen,Shidong Fang,Yitong Zhou,Ying Zhao,Peng Li,Xin‐Yao Yu
标识
DOI:10.1002/anie.202408382
摘要
Abstract Electrochemical nitrate reduction reaction (NO 3 RR) is a promising approach to achieve remediation of nitrate‐polluted wastewater and sustainable production of ammonia. However, it is still restricted by the low activity, selectivity and Faraday efficiency for ammonia synthesis. Herein, we propose an effective strategy to modulate the electrolyte microenvironment in electrical double layer (EDL) by mediating alkali metal cations in the electrolyte to enhance the NO 3 RR performance. Taking bulk Cu as a model catalyst, the experimental study reveals that the NO 3 − ‐to‐NH 3 performance in different electrolytes follows the trend Li + <Cs + <Na + <K + . Theoretical studies illustrate that the proton transport rate in NO 3 RR and the activity of the rate‐determining step (NO 3 − to NO 2 − ) increase in the order Li + <Cs + <Na + <K + . The cation effects are also general for two typical nanostructured catalysts including copper/cuprous oxide and nickel phosphides, achieving near‐100 % Faradaic efficiency and over 99 % conversion of NO 3 − to NH 3 . Furthermore, we demonstrate that NO 3 − can be converted to high‐purity NH 4 Cl by copper/cuprous oxide catalyst in K + ‐containing electrolyte.
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