Yang Songyuan, Wang Huaizhu, Xiong Yan, Zhu Mengfei, Sun Jingjie, Jiang Minghang, Zhang Pengbo, Wei Jie, Xing Yizhi, Tie Zuoxiu, Jin Zhong
State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, Jiangsu 210023, P. R. China.
Department of Chemistry, School of Science, Xihua University, Chengdu, Sichuan 610039, P. R. China.
Nano Lett. 2023 Nov 22;23(22):10140-10147. doi: 10.1021/acs.nanolett.3c02380. Epub 2023 Nov 6.
Massive production of practical metal or alloy based electrocatalysts for electrocatalytic CO reduction reaction is usually limited by energy-extensive consumption, poor reproducibility, and weak adhesion on electrode substrates. Herein, we report the ultrafast thermal shock synthesis and porosity engineering of free-standing Cu-Bi bimetallic nanofoam electrocatalysts with 3D hierarchical porous structure and easily adjustable compositions. During the thermal shock process, the rapid heating and cooling steps in several seconds result in strong interaction between metal nanopowders to form multiphase nanocrystallines with abundant grain boundaries and metastable CuBi intermetallic phase. The subsequent porosity engineering process via acid etching and electroreduction creates highly porous Cu-Bi structures that can increase electrochemically active surface area and facilitate mass/charge transfer. Among the Cu-Bi nanofoam electrodes with different Cu/Bi ratios, the CuBi nanofoam exhibited the highest formate selectivity with a Faradaic efficiency of 92.4% at -0.9 V (vs reversible hydrogen electrode) and demonstrated excellent operation stability.