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原位电化学拉曼光谱和单晶体表面界面水的第一性原理分子动力学研究。

In situ electrochemical Raman spectroscopy and ab initio molecular dynamics study of interfacial water on a single-crystal surface.

机构信息

College of Materials, State Key Laboratory of Physical Chemistry of Solid Surfaces, MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, iChEM, College of Chemistry and Chemical Engineering, College of Energy, College of Physical Science and Technology, Xiamen University, Xiamen, China.

School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, China.

出版信息

Nat Protoc. 2023 Mar;18(3):883-901. doi: 10.1038/s41596-022-00782-8. Epub 2023 Jan 4.

Abstract

The dynamics and chemistry of interfacial water are essential components of electrocatalysis because the decomposition and formation of water molecules could dictate the protonation and deprotonation processes on the catalyst surface. However, it is notoriously difficult to probe interfacial water owing to its location between two condensed phases, as well as the presence of external bias potentials and electrochemically induced reaction intermediates. An atomically flat single-crystal surface could offer an attractive platform to resolve the internal structure of interfacial water if advanced characterization tools are developed. To this end, here we report a protocol based on the combination of in situ Raman spectroscopy and ab initio molecular dynamics (AIMD) simulations to unravel the directional molecular features of interfacial water. We present the procedures to prepare single-crystal electrodes, construct a Raman enhancement mode with shell-isolated nanoparticle, remove impurities, eliminate the perturbation from bulk water and dislodge the hydrogen bubbles during in situ electrochemical Raman experiments. The combination of the spectroscopic measurements with AIMD simulation results provides a roadmap to decipher the potential-dependent molecular orientation of water at the interface. We have prepared a detailed guideline for the application of combined in situ Raman and AIMD techniques; this procedure may take a few minutes to several days to generate results and is applicable to a variety of disciplines ranging from surface science to energy storage to biology.

摘要

界面水的动力学和化学性质是电催化的重要组成部分,因为水分子的分解和形成可以决定催化剂表面的质子化和去质子化过程。然而,由于界面水位于两个凝聚相之间,以及外加偏压和电化学诱导反应中间体的存在,因此对其进行探测极具挑战性。如果开发出先进的表征工具,原子级平坦的单晶表面将为解析界面水的内部结构提供一个有吸引力的平台。为此,我们在此报告了一种基于原位拉曼光谱和从头算分子动力学 (AIMD) 模拟相结合的方案,以揭示界面水的定向分子特征。我们介绍了制备单晶电极、构建具有壳层隔离纳米粒子的拉曼增强模式、去除杂质、消除体相水的干扰以及在原位电化学拉曼实验中驱除氢气泡的步骤。光谱测量与 AIMD 模拟结果的结合为解析界面上水的电位依赖性分子取向提供了一条途径。我们已经为原位拉曼和 AIMD 技术的联合应用制定了详细的指南;该过程可能需要几分钟到几天的时间才能产生结果,并且适用于从表面科学到储能到生物学等各种学科。

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