Chen Zhijian, Ma Zhenghui, Fan Guoli, Li Feng
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
ACS Appl Mater Interfaces. 2024 Jul 10;16(27):35143-35154. doi: 10.1021/acsami.4c05973. Epub 2024 Jun 29.
Presently, realizing high ethanol selectivity in CO electroreduction remains challenging due to difficult C-C coupling and fierce product competition. In this work, we report an innovative approach for improving the efficiency of Cu-based electrocatalysts in ethanol generation from electrocatalytic CO reduction using a crystal plane modification strategy. These novel Cu-based electrocatalysts were fabricated by electrochemically activating three-dimensional (3D) flower-like CuO micro/nanostructures grown in situ on copper foils and modifying with surfactants. It was demonstrated that the fabricated Cu-based electrocatalyst featured a predominantly exposed Cu(100) surface loaded with high-density Cu nanoparticles (NPs). The optimal Cu-based electrocatalyst displayed considerably improved CO electroreduction performance, with a Faraday efficiency of 37.9% for ethanol and a maximum Faraday efficiency of 68.0% for C products at -1.4 V vs RHE in an H-cell, accompanied by a high current density of 69.9 mA·cm, much better than the particulate Cu-based electrocatalyst. It was unveiled that the Cu(100)-rich surface of nanoscale petals with abundant under-coordinated copper atoms from CuNPs was conducive to the formation and stabilization of key *CHCHO and *OCH intermediates, thereby promoting ethanol generation. This study highlighted the critical role of CuNP-loaded Cu(100) surface structures on structured Cu-based electrocatalysts in enhancing ethanol production for the CO electroreduction process.
目前,由于C-C偶联困难和产物竞争激烈,在CO电还原中实现高乙醇选择性仍然具有挑战性。在这项工作中,我们报告了一种创新方法,即使用晶面修饰策略提高铜基电催化剂在电催化CO还原生成乙醇中的效率。这些新型铜基电催化剂是通过电化学活化在铜箔上原位生长的三维(3D)花状CuO微/纳米结构并用表面活性剂进行修饰而制备的。结果表明,制备的铜基电催化剂具有主要暴露的Cu(100)表面,负载有高密度的铜纳米颗粒(NPs)。在H型电解池中,相对于可逆氢电极(RHE)在-1.4 V时,最佳铜基电催化剂显示出显著提高的CO电还原性能,乙醇的法拉第效率为37.9%,C产物的最大法拉第效率为68.0%,同时伴有69.9 mA·cm的高电流密度,远优于颗粒状铜基电催化剂。研究发现,具有来自CuNPs的大量配位不足铜原子的纳米级花瓣富含Cu(100)的表面有利于关键CHCHO和OCH中间体的形成和稳定,从而促进乙醇的生成。这项研究突出了结构化铜基电催化剂上负载CuNP的Cu(100)表面结构在增强CO电还原过程中乙醇生成方面的关键作用。