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铂表面水的取向决定碱性介质中的析氢反应动力学

Platinum Surface Water Orientation Dictates Hydrogen Evolution Reaction Kinetics in Alkaline Media.

作者信息

Shah Aamir Hassan, Zhang Zisheng, Wan Chengzhang, Wang Sibo, Zhang Ao, Wang Laiyuan, Alexandrova Anastassia N, Huang Yu, Duan Xiangfeng

机构信息

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

Department of Materials Science and Engineering, University of California, Los Angeles, California 90095, United States.

出版信息

J Am Chem Soc. 2024 Apr 10;146(14):9623-9630. doi: 10.1021/jacs.3c12934. Epub 2024 Mar 27.

Abstract

The fundamental understanding of sluggish hydrogen evolution reaction (HER) kinetics on a platinum (Pt) surface in alkaline media is a topic of considerable debate. Herein, we combine cyclic voltammetry (CV) and electrical transport spectroscopy (ETS) approaches to probe the Pt surface at different pH values and develop molecular-level insights into the pH-dependent HER kinetics in alkaline media. The change in HER Tafel slope from ∼110 mV/decade in pH 7-10 to ∼53 mV/decade in pH 11-13 suggests considerably enhanced kinetics at higher pH. The ETS studies reveal a similar pH-dependent switch in the ETS conductance signal at around pH 10, suggesting a notable change of surface adsorbates. Fixed-potential calculations and chemical bonding analysis suggest that this switch is attributed to a change in interfacial water orientation, shifting from primarily an O-down configuration below pH 10 to a H-down configuration above pH 10. This reorientation weakens the O-H bond in the interfacial water molecules and modifies the reaction pathway, leading to considerably accelerated HER kinetics at higher pH. Our integrated studies provide an unprecedented molecular-level understanding of the nontrivial pH-dependent HER kinetics in alkaline media.

摘要

在碱性介质中,对于铂(Pt)表面迟缓析氢反应(HER)动力学的基本理解是一个备受争议的话题。在此,我们结合循环伏安法(CV)和电输运光谱法(ETS),在不同pH值下探测Pt表面,并对碱性介质中pH依赖的HER动力学形成分子层面的见解。HER塔菲尔斜率从pH 7 - 10时的约110 mV/十倍变化到pH 11 - 13时的约53 mV/十倍,表明在较高pH值下动力学显著增强。ETS研究揭示了在pH约10时ETS电导信号中类似的pH依赖性转变,表明表面吸附物发生了显著变化。固定电位计算和化学键分析表明,这种转变归因于界面水取向的变化,从pH 10以下主要的O朝下构型转变为pH 10以上的H朝下构型。这种重新取向削弱了界面水分子中的O - H键并改变了反应途径,导致在较高pH值下HER动力学显著加速。我们的综合研究为碱性介质中复杂的pH依赖HER动力学提供了前所未有的分子层面理解。

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