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单原子电催化剂界面动力学建模:显式溶剂化与电势依赖性

Modeling Interfacial Dynamics on Single Atom Electrocatalysts: Explicit Solvation and Potential Dependence.

作者信息

Zhang Zisheng, Li Jun, Wang Yang-Gang

机构信息

Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095, United States.

Department of Chemistry and Key Laboratory of Organic Optoelectronics & Molecular Engineering of Ministry of Education, Tsinghua University, Beijing 100084, China.

出版信息

Acc Chem Res. 2024 Jan 16;57(2):198-207. doi: 10.1021/acs.accounts.3c00589. Epub 2024 Jan 3.

Abstract

ConspectusSingle atom electrocatalysts, with noble metal-free composition, maximal atom efficiency, and exceptional reactivity toward various energy and environmental applications, have become a research hot spot in the recent decade. Their simplicity and the isolated nature of the atomic structure of their active site have also made them an ideal model catalyst system for studying reaction mechanisms and activity trends. However, the state of the single atom active sites during electrochemical reactions may not be as simple as is usually assumed. To the contrary, the single atom electrocatalysts have been reported to be under greater influence from interfacial dynamics, with solvent and electrolyte ions perpetually interacting with the electrified active center under an applied electrode potential. These complexities render the activity trends and reaction mechanisms derived from simplistic models dubious.In this Account, with a few popular single atom electrocatalysis systems, we show how the change in electrochemical potential induces nontrivial variation in the free energy profile of elemental electrochemical reaction steps, demonstrate how the active centers with different electronic structure features can induce different solvation structures at the interface even for the same reaction intermediate of the simplest electrochemical reaction, and discuss the implication of the complexities on the kinetics and thermodynamics of the reaction system to better address the activity and selectivity trends. We also venture into more intriguing interfacial phenomena, such as alternative reaction pathways and intermediates that are favored and stabilized by solvation and polarization effects, long-range interfacial dynamics across the region far beyond the contact layer, and the dynamic activation or deactivation of single atom sites under operation conditions. We show the necessity of including realistic aspects (explicit solvent, electrolyte, and electrode potential) into the model to correctly capture the physics and chemistry at the electrochemical interface and to understand the reaction mechanisms and reactivity trends. We also demonstrate how the popular simplistic design principles fail and how they can be revised by including the kinetics and interfacial factors in the model. All of these rich dynamics and chemistry would remain hidden or overlooked otherwise. We believe that the complexity at an electrochemical interface is not a curse but a blessing in that it enables deeper understanding and finer control of the potential-dependent free energy landscape of electrochemical reactions, which opens up new dimensions for further design and optimization of single atom electrocatalysts and beyond. Limitations of current methods and challenges faced by the theoretical and experimental communities are discussed, along with the possible solutions awaiting development in the future.

摘要

综述

单原子电催化剂,具有无贵金属组成、最大原子效率以及对各种能源和环境应用的卓越反应活性,在近十年已成为研究热点。其简单性以及活性位点原子结构的孤立性质,也使其成为研究反应机理和活性趋势的理想模型催化体系。然而,单原子活性位点在电化学反应过程中的状态可能不像通常所认为的那么简单。相反,据报道单原子电催化剂受界面动力学的影响更大,在施加电极电位下,溶剂和电解质离子会持续与带电的活性中心相互作用。这些复杂性使得从简单模型得出的活性趋势和反应机理值得怀疑。

在本综述中,通过几个常见的单原子电催化体系,我们展示了电化学势的变化如何在元素电化学反应步骤的自由能分布中引起显著变化,说明了具有不同电子结构特征的活性中心如何即使对于最简单电化学反应的相同反应中间体,也能在界面处诱导出不同的溶剂化结构,并讨论了这些复杂性对反应体系动力学和热力学的影响,以更好地理解活性和选择性趋势。我们还探讨了更有趣的界面现象,例如由溶剂化和极化效应所青睐和稳定的替代反应途径和中间体、跨越远超出接触层区域的长程界面动力学以及在操作条件下单原子位点的动态活化或失活。我们展示了将实际因素(明确的溶剂、电解质和电极电位)纳入模型以正确捕捉电化学界面处的物理和化学过程并理解反应机理和反应活性趋势的必要性。我们还说明了常见的简单设计原则是如何失效的,以及如何通过在模型中纳入动力学和界面因素来对其进行修正。否则,所有这些丰富的动力学和化学过程都将被隐藏或忽视。我们认为,电化学界面的复杂性并非祸事而是幸事,因为它能够让我们更深入地理解并更精细地控制电化学反应中依赖于电位的自由能态势,这为单原子电催化剂及其他领域的进一步设计和优化开辟了新的维度。同时还讨论了当前方法的局限性以及理论和实验界所面临的挑战,以及未来有待开发的可能解决方案。

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