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采用从头算分子动力学方法模拟零电荷电势下的阶梯状铂/水界面。

Modeling stepped Pt/water interfaces at potential of zero charge with ab initio molecular dynamics.

作者信息

Chen Ao, Le Jia-Bo, Kuang Yongbo, Cheng Jun

机构信息

State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.

Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.

出版信息

J Chem Phys. 2022 Sep 7;157(9):094702. doi: 10.1063/5.0100678.

Abstract

It is worth understanding the potentials of zero charge (PZCs) and structures of stepped metal/water interfaces, because for many electrocatalytic reactions, stepped surfaces are more active than atomically flat surfaces. Herein, a series of stepped Pt/water interfaces are modeled at different step densities with ab initio molecular dynamics. It is found that the structures of Pt/water interfaces are significantly influenced by the step density, particularly in regard to the distribution of chemisorbed water. The step sites of metal surfaces are more preferred for water chemisorption than terrace sites, and until the step density is very low, water will chemisorb on the terrace. In addition, it is revealed that the PZCs of stepped Pt/water interfaces are generally smaller than that of Pt(111), and the difference is mainly attributed to the difference in their work function, providing a simple way to estimate the PZCs of stepped metal surfaces. Finally, it is interesting to see that the Volta potential difference is almost the same for Pt/water interfaces with different step densities, although their interface structures and magnitude of charge transfer clearly differ.

摘要

了解零电荷电位(PZCs)的潜力以及阶梯状金属/水界面的结构是很有价值的,因为对于许多电催化反应而言,阶梯状表面比原子级平整表面更具活性。在此,利用从头算分子动力学对一系列不同阶梯密度的阶梯状Pt/水界面进行了建模。研究发现,Pt/水界面的结构受阶梯密度的显著影响,特别是在化学吸附水的分布方面。金属表面的阶梯位点比平台位点更有利于水的化学吸附,并且在阶梯密度非常低之前,水会化学吸附在平台上。此外,研究表明阶梯状Pt/水界面的PZCs通常小于Pt(111)的PZCs,这种差异主要归因于它们功函数的不同,这为估算阶梯状金属表面的PZCs提供了一种简单方法。最后,有趣的是,尽管具有不同阶梯密度的Pt/水界面的界面结构和电荷转移量明显不同,但它们的伏特电位差几乎相同。

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