电合成
化学
乙醛酸
法拉第效率
催化作用
电化学
产量(工程)
化学工程
吸附
金属
纳米技术
多相催化
放热反应
联轴节(管道)
无机化学
纳米结构
偶联反应
贵金属
电极
甘氨酸
电解质
聚苯胺
电极电位
纳米笼
氨基酸
作者
Kun Chen,Xiaonan Zheng,Lin Luo,Dan Liú,Han Cheng,Pengzuo Chen,Yun Tong,Changzheng Wu
摘要
Abstract Electrochemical C–N coupling driven by renewable electricity provides a sustainable strategy for amino acid synthesis, yet achieving high catalytic efficiency still remains challenging. Herein, a metallic Ag-BiAg heterostructured dendritic electrode is developed by a simple electrodeposition strategy for efficient amino acid electrosynthesis. The optimized catalyst achieves a high glycine Faradaic efficiency of 80.72%, accompanied by a yield rate of 993.3 μmol h–1 cm–2 at −0.9 V vs RHE, outperforming previously reported catalysts. Operando spectroscopic investigations combined with theoretical calculations reveal that the metallic Ag-BiAg heterointerface synergistically optimizes the electronic structure and adsorption behavior of key reaction intermediates, thereby accelerating the generation of the crucial *NH2OH intermediate, enhancing the activation and hydrogenation of glyoxylic acid oxime, and promoting the overall C–N coupling kinetics toward highly selective glycine electrosynthesis. Remarkably, an energy-efficient paired electrosynthesis system integrated with air plasma-derived feedstocks was further constructed, achieving high-performance glycine and formate coproduction over a broad voltage range of 1.2–1.6 V, together with promising long-term stability over 120 h. This work provides a sustainable strategy for air plasma-to-amino acid electrosynthesis through the rational interfacial engineering of dual-site catalytic systems.
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