结晶度
催化作用
极限抗拉强度
格子(音乐)
吸附
化学
偶极子
材料科学
拉伸应变
晶格常数
晶格能
拉伤
化学工程
结晶学
物理化学
晶体结构
复合材料
有机化学
衍射
医学
内科学
物理
声学
光学
工程类
作者
Jiapeng Jiao,Xinchen Kang,Jiahao Yang,Shuaiqiang Jia,Xiao Dong Chen,Yaguang Peng,Chunjun Chen,Xueqing Xing,Zhongjun Chen,Mingyuan He,Haihong Wu,Buxing Han
标识
DOI:10.1002/anie.202409563
摘要
Regulating the binding effect between the surface of an electrode material and reaction intermediates is essential in highly efficient CO2 electro-reduction to produce high-value multicarbon (C2+) compounds. Theoretical study reveals that lattice tensile strain in single-component Cu catalysts can reduce the dipole-dipole repulsion between *CO intermediates and promotes *OH adsorption, and the high *CO and *OH coverage decreases the energy barrier for C-C coupling. In this work, Cu catalysts with varying lattice tensile strain were fabricated by electro-reducing CuO precursors with different crystallinity, without adding any extra components. The as-prepared single-component Cu catalysts were used for CO2 electro-reduction, and it is discovered that the lattice tensile strain in Cu could enhance the Faradaic efficiency (FE) of C2+ products effectively. Especially, the as-prepared CuTPA catalyst with high lattice tensile strain achieves a FEC2+ of 90.9% at -1.25 V vs. RHE with a partial current density of 486.1 mA cm-2.
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