{"title":"Cation effects in hydrogen evolution and CO2-to-CO conversion: A critical perspective.","authors":"Yu-Shen Hsu, Sachinthya T Rathnayake, M. Waegele","doi":"10.1063/5.0201751","DOIUrl":null,"url":null,"abstract":"The rates of many electrocatalytic reactions can be strongly affected by the structure and dynamics of the electrochemical double layer, which in turn can be tuned by the concentration and identity of the supporting electrolyte's cation. The effect of cations on an electrocatalytic process depends on a complex interplay between electrolyte components, electrode material and surface structure, applied electrode potential, and reaction intermediates. Although cation effects remain insufficiently understood, the principal mechanisms underlying cation-dependent reactivity and selectivity are beginning to emerge. In this Perspective, we summarize and critically examine recent advances in this area in the context of the hydrogen evolution reaction (HER) and CO2-to-CO conversion, which are among the most intensively studied and promising electrocatalytic reactions for the sustainable production of commodity chemicals and fuels. Improving the kinetics of the HER in base and enabling energetically efficient and selective CO2 reduction at low pH are key challenges in electrocatalysis. The physical insights from the recent literature illustrate how cation effects can be utilized to help achieve these goals and to steer other electrocatalytic processes of technological relevance.","PeriodicalId":501648,"journal":{"name":"The Journal of Chemical Physics","volume":"27 9","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-04-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"The Journal of Chemical Physics","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1063/5.0201751","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The rates of many electrocatalytic reactions can be strongly affected by the structure and dynamics of the electrochemical double layer, which in turn can be tuned by the concentration and identity of the supporting electrolyte's cation. The effect of cations on an electrocatalytic process depends on a complex interplay between electrolyte components, electrode material and surface structure, applied electrode potential, and reaction intermediates. Although cation effects remain insufficiently understood, the principal mechanisms underlying cation-dependent reactivity and selectivity are beginning to emerge. In this Perspective, we summarize and critically examine recent advances in this area in the context of the hydrogen evolution reaction (HER) and CO2-to-CO conversion, which are among the most intensively studied and promising electrocatalytic reactions for the sustainable production of commodity chemicals and fuels. Improving the kinetics of the HER in base and enabling energetically efficient and selective CO2 reduction at low pH are key challenges in electrocatalysis. The physical insights from the recent literature illustrate how cation effects can be utilized to help achieve these goals and to steer other electrocatalytic processes of technological relevance.
许多电催化反应的速率都会受到电化学双电层的结构和动态的强烈影响,而电化学双电层的结构和动态又会受到支撑电解质中阳离子的浓度和特性的影响。阳离子对电催化过程的影响取决于电解质成分、电极材料和表面结构、外加电极电位以及反应中间产物之间复杂的相互作用。虽然人们对阳离子效应的了解仍然不够深入,但阳离子依赖反应性和选择性的主要机制已开始浮出水面。在本《视角》中,我们以氢进化反应(HER)和 CO2 到 CO 的转化为背景,总结并批判性地审视了这一领域的最新进展,氢进化反应和 CO2 到 CO 的转化是研究最深入、最有前景的电催化反应,可用于商品化学品和燃料的可持续生产。改善碱中氢进化反应的动力学以及在低 pH 值条件下实现高能效和高选择性的二氧化碳还原是电催化领域的关键挑战。近期文献中的物理见解说明了如何利用阳离子效应来帮助实现这些目标,并引导其他具有技术相关性的电催化过程。