Su Dai-Jian, Xiang Shi-Qin, Gao Shu-Ting, Jiang Yimin, Liu Xiaohong, Zhang Wei, Zhao Liu-Bin, Tian Zhong-Qun
Department of Chemistry, School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China.
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, China.
JACS Au. 2023 Mar 2;3(3):905-918. doi: 10.1021/jacsau.3c00002. eCollection 2023 Mar 27.
CO can be electrochemically reduced to different products depending on the nature of catalysts. In this work, we report comprehensive kinetic studies on catalytic selectivity and product distribution of the CO reduction reaction on various metal surfaces. The influences on reaction kinetics can be clearly analyzed from the variation of reaction driving force (binding energy difference) and reaction resistance (reorganization energy). Moreover, the CORR product distributions are further affected by external factors such as electrode potential and solution pH. A potential-mediated mechanism is found to determine the competing two-electron reduction products of CO that shifts from thermodynamics-controlled product formic acid at less negative electrode potentials to kinetic-controlled product CO at more negative electrode potentials. Based on detailed kinetic simulations, a three-parameter descriptor is applied to identify the catalytic selectivity of CO, formate, hydrocarbons/alcohols, as well as side product H. The present kinetic study not only well explains the catalytic selectivity and product distribution of experimental results but also provides a fast way for catalyst screening.
根据催化剂的性质,一氧化碳(CO)可以通过电化学方法还原为不同的产物。在本工作中,我们报道了关于CO在各种金属表面还原反应的催化选择性和产物分布的全面动力学研究。从反应驱动力(结合能差)和反应阻力(重组能)的变化中,可以清晰地分析出对反应动力学的影响。此外,CO还原反应(CORR)的产物分布还会受到诸如电极电位和溶液pH值等外部因素的进一步影响。我们发现一种电位介导机制决定了CO的竞争性双电子还原产物,该机制使得在电极电位较负时从热力学控制产物甲酸转变为在电极电位更负时的动力学控制产物CO。基于详细的动力学模拟,应用一个三参数描述符来识别CO、甲酸盐、碳氢化合物/醇以及副产物H的催化选择性。目前的动力学研究不仅很好地解释了实验结果的催化选择性和产物分布,还为催化剂筛选提供了一种快速方法。