电合成
法拉第效率
催化作用
原位
电化学
尿素
材料科学
吸附
联轴节(管道)
硝酸盐
选择性
化学工程
无机化学
产量(工程)
火用反应
亚硝酸盐
密度泛函理论
拉曼光谱
多金属氧酸盐
化学
多相催化
电极
作者
Rui Zhao,Dian Song,Cheng Liu,Chaohui Zeng,Zhanghong Zhou,Yikun Chen,Season S. Chen,Youyong Li,Yanguang Li,Hao Wu
摘要
ABSTRACT Electrochemical urea synthesis via co‐reduction of CO 2 and nitrate (NO 3 − ) offers a sustainable route for C─N bond formation but remains challenged by poor selectivity and competing side reactions. Here, we report a dual‐metal interfacial engineering strategy that enables C─N coupling by favoring a key NO─M 1 ─NO─CO─M 2 configuration. Using CuBi 2 O 4 as a model precursor, in situ electroreduction induces reconstruction into an electron‐enriched and low‐coordinated Cu─Bi interfacial structure. Operando Raman and surface‐enhanced infrared absorption spectroscopy, together with density functional theory calculations, reveal that these reconstructed dual‐metal interfaces enable cooperative adsorption of NO 3 − and CO 2 , favoring a spatially confined NO─Cu─NO─CO─Bi configuration. This proposed configuration lowers the overall activation barrier and converts the traditionally endergonic C─N coupling into an exergonic N─C─N coupling process, thereby redirecting the reaction pathway toward urea formation while suppressing nitrite and CO byproducts. As a result, the catalyst achieves a urea Faradaic efficiency of 32.7% at −0.4 V vs. RHE with a high yield rate of 2955.3 mg h −1 g −1 at −0.6 V vs. RHE under large current densities. This work provides insights into a generalizable interfacial‐site design for modulating reaction pathways in electrosynthetic C─N coupling systems.
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