电合成
化学
甲酰胺
阳极
电极
催化作用
产量(工程)
法拉第效率
氧化还原
联轴节(管道)
电流密度
纳米技术
电化学
电子
瓶颈
电流(流体)
阴极
无机化学
化学工程
可再生能源
电解质
反应机理
分析化学(期刊)
阴极保护
化学物理
电子传输链
作者
Xiang-Da Zhang,Pengsong Li,Yong Wang,Ganwen Zhang,Yuqing Hou,Xihua Wang,Congyang Wang,Xinchen Kang,Huizhen Liu,Yi Xu,Qinggong Zhu,Buxing Han
摘要
Renewable electricity-driven electrocatalytic systems hold promise for the sustainable formamide (HCONH 2 ) synthesis. However, a major bottleneck remains the low Faradaic efficiency (FE) and overall electron utilization inherent to current unipolar C–N coupling strategies, where substantial electron consumption at the counter electrode severely limits system efficiency. Here, we propose a redox-tuned paradigm ( A red + B oxi → C ) through a pulsed paired electrosynthesis strategy. Using an atomically ordered CuPd catalyst with CH 3 OH and NO 2 – as feedstocks in an undivided cell, HCONH 2 is simultaneously produced at both electrodes under optimized pulse conditions with alternating change in potential periodically ( E a = 1.3 V, t a = 10 s; E c = −0.7 V, t c = 10 s). This system achieves an FE of 85.6% for HCONH 2 at a current density of 81.5 mA cm –2, with a yield of 263.3 μmol·h –1 ·cm –2 . The FE is higher than those reported to date. Mechanism studies reveal that pulsed operation creates a periodically switching cathode/anode environment. This enables the ordered CuPd catalyst to function sequentially as a reduction site (converting NO 2 – to *NH 3 ) during cathodic pulses and as a co-oxidation site (converting *NH 3 to *NH 2 along with CH 3 OH to *HCOH) during anodic pulses, thereby driving efficient C–N bond coupling to form HCONH 2 . Techno-economic analysis further confirmed the significant industrial potential of this strategy in the future renewable energy market.
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