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通过纳米级界面处的界面电子态定制的 HO 活化用于增强电催化析氢

Activation of HO Tailored by Interfacial Electronic States at a Nanoscale Interface for Enhanced Electrocatalytic Hydrogen Evolution.

作者信息

Wang Pan-Yue, Zhou Jia-Feng, Chen Hui, Peng Bo, Zhang Kun

机构信息

Shanghai Key Laboratory of Green Chemistry and Chemical Processes, College of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, China.

Laboratoire de Chimie, Ecole Normale Supérieure de Lyon, Institut de Chimie de Lyon, Université de Lyon, 46 Allée d'italie, Lyon 69364 CEDEX 07, France.

出版信息

JACS Au. 2022 Jun 6;2(6):1457-1471. doi: 10.1021/jacsau.2c00187. eCollection 2022 Jun 27.

Abstract

Despite the fundamental and practical significance of the hydrogen evolution reaction (HER), the reaction kinetics at the molecular level are not well-understood, especially in basic media. Here, with ZIF-67-derived Co-based carbon frameworks (Co/NCs) as model catalysts, we systematically investigated the effects of different reaction parameters on the HER kinetics and discovered that the HER activity was directly dependent not on the type of nitrogen in the carbon framework but on the relative content of surface hydroxyl and water (OH/HO) adsorbed on Co active sites embedded in carbon frameworks. When the ratio of the OH/HO was close to 1:1, the Co/NC nanocatalyst showed the best reaction performance under the condition of high-pH electrolytes, e.g., an overpotential of only 232 mV at a current density of 10 mA cm in the 1 M KOH electrolyte. We unambiguously identified that the structural water molecules (SWs) in the form of hydrous hydroxyl complexes absorbed on metal centers {OH·HO@M} were catalytic active sites for the enhanced HER, where M could be transition or alkaline metal cations. Different from the traditional hydrogen bonding of water, the hydroxyl (hydroxide) groups and water molecules in the SWs were mainly bonded together via the spatial interaction between the p orbitals of O atoms, exhibiting features of a delocalized π-bond with a metastable state. These newly formed surface bonds or transitory states could be new weak interactions that synergistically promote both interfacial electron transfer and the activation of water (dissociation of O-H bonds) at the electrode surface, i.e., the formation of activated H adducts (H*). The capture of new surface states not only explains pH-, cation-, and transition-metal-dependent hydrogen evolution kinetics but also provides completely new insights into the understanding of other electrocatalytic reductions involving other small molecules, including CO, CO, and N.

摘要

尽管析氢反应(HER)具有重要的基础和实际意义,但其在分子水平上的反应动力学仍未得到充分理解,尤其是在碱性介质中。在此,我们以ZIF-67衍生的钴基碳碳框架碳(Co/NCs)作为模型催化剂,系统地研究了不同反应参数对HER动力学的影响,发现HER活性并不直接取决于碳框架中氮的类型,而是取决于吸附在嵌入碳框架中的钴活性位点上的表面羟基和水(OH/HO)的相对含量。当OH/HO的比例接近1:1时,Co/NC纳米催化剂在高pH值电解质条件下表现出最佳反应性能,例如在1 M KOH电解质中,电流密度为10 mA cm时过电位仅为232 mV。我们明确确定,以含水羟基络合物形式吸附在金属中心{OH·HO@M}上的结构水分子(SWs)是增强HER的催化活性位点,其中M可以是过渡金属或碱金属阳离子。与传统的水氢键不同,SWs中的羟基(氢氧根)基团和水分子主要通过O原子p轨道之间的空间相互作用结合在一起,呈现出具有亚稳态的离域π键特征。这些新形成的表面键或过渡态可能是新的弱相互作用,它们协同促进电极表面的界面电子转移和水的活化(O-H键的解离),即活化H加合物(H*)的形成。捕获新的表面态不仅解释了pH、阳离子和过渡金属依赖的析氢动力学,还为理解涉及其他小分子(包括CO、CO和N)的其他电催化还原提供了全新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac61/9241158/0dc59b151bc2/au2c00187_0007.jpg

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