催化作用
材料科学
化学工程
电化学
电催化剂
电解
一氧化碳
电极
化学
多相催化
分子动力学
纳米颗粒
振动
密度泛函理论
纳米技术
无机化学
吸附
作者
Baoxin Ni,Yihao Wen,Xue Wen,Peng Shen,Weidong Zhao,S X Li,X J Li,Ru Yan,Wanglin Qu,G L Zhang,Zi Wang,Shuiyun Shen,Junliang Zhang,Hao Wei
标识
DOI:10.1021/acscatal.6c03047
摘要
The regulation mechanism of interfacial coatings on CO electroreduction has not yet been unraveled even though high CO-to-C 2+ conversion is observed. In this work, in situ spectroscopy techniques were employed to decouple the regulatory rules of carbon coatings on the hydrogen-bonding network and adsorbed carbon monoxide at the copper-based catalytic interface for CO electroreduction. The coated-carbon layers could promote the CO-to-C 2+ conversion efficiency, as the C 2+ selectivity increased from below 66% (for pure Cu) to above 77% in alkaline electrolyte. Combined with in situ electrochemical infrared spectroscopy, online mass spectrometry, and theoretical calculations, it was found that the carbon coating could reconstruct the interfacial hydrogen-bonding network and enhances its orderliness, thereby inducing more favorable hydrogenation steps for intermediates compared to hydrogen evolution. Meanwhile, the Cu–C interface tunes the vibrational state of linearly adsorbed CO, strengthens Cu–CO interactions, and lowers the energy barrier for C–C coupling toward C 2+ products. To further demonstrate the practical relevance of this mechanism, a self-designed compact integrated CORR prototype was developed, which maintained an ethylene Faradaic efficiency above 40% over 24 h at 15 A. These findings provide molecular-level insight and practical guidance for the design of interfacial-modified Cu catalysts for efficient CO electro-conversion.
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