材料科学
电化学
吸附
法拉第效率
催化作用
铜
化学工程
亚硝酸盐
电解质
尿素
无机化学
环境污染
废水
电极
二氧化碳电化学还原
碳纤维
工业废水处理
二氧化碳
联轴节(管道)
氨
生物炭
氮气
工作(物理)
能量转换
纳米技术
污染物
污水处理
作者
Menglin Zhou,Guofei Zhang,Liangqi Gui,Xiuxiu Jia,石纪军,Xiaojun Zeng,Yanhao Zhang,Yingtang Zhou,Xue Zhao,Guangzhi Hu
摘要
ABSTRACT Industrial wastewater rich in nitrite and anthropogenic CO 2 emissions are typically treated as separate waste streams, requiring energy‐intensive management. Here we report an electrochemical strategy that couples nitrite and carbon dioxide to synthesize urea, enabling simultaneous pollution mitigation and resource recovery. An erbium‐doped copper nanocatalyst is developed to promote selective C─N coupling, delivering a urea yield of 510.29 mg h −1 g cat −1 with a Faradaic efficiency of 34.04%. At the same time, higher removal rate of nitrite can be achieved and sustained performance over repeated cycles. The mechanism reveals that Er doping can adjust the adsorption behavior of intermediate substances at Cu interface, make the upward shift of the d‐band center of Cu, enhance the adsorption of *CO 2 and *NH 2 at the active site of Cu, reduce the energy barrier formed of the C─N coupling step *CO 2 NH 2 , and reduce the energy barrier of thermodynamically limiting step *COOHNH 2 formation, and promote the synthesis of urea. Beyond catalytic performance, the resulting electrolyte can be directly reused for irrigation, where it enhances early‐stage growth of crops, demonstrating a closed‐loop integration of carbon and nitrogen utilization. This work establishes a proof‐of‐concept for transforming coupled waste streams into value‐added chemicals while linking electrochemical conversion with agricultural application. The approach provides a scalable pathway toward circular carbon‐nitrogen management and sustainable environmental remediation.
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