Kwac Kijeong, Yang Nan, Ryan Matthew J, Zanni Martin T, Cho Minhaeng
Center for Molecular Spectroscopy and Dynamics, Institute for Basic Science (IBS), Seoul 02841, Republic of Korea.
Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.
J Chem Phys. 2024 Feb 14;160(6). doi: 10.1063/5.0189122.
Understanding water dynamics at charged interfaces is of great importance in various fields, such as catalysis, biomedical processes, and solar cell materials. In this study, we implemented molecular dynamics simulations of a system of pure water interfaced with Au electrodes, on one side of which 4-mercaptobenzonitrile (4-MBN) molecules are adsorbed. We calculated time correlation functions of various dynamic quantities, such as the hydrogen bond status of the N atom of the adsorbed 4-MBN molecules, the rotational motion of the water OH bond, hydrogen bonds between 4-MBN and water, and hydrogen bonds between water molecules in the interface region. Using the Luzar-Chandler model, we analyzed the hydrogen bond dynamics between a 4-MBN and a water molecule. The dynamic quantities we calculated can be divided into two categories: those related to the collective behavior of interfacial water molecules and the H-bond interaction between a water molecule and the CN group of 4-MBN. We found that these two categories of dynamic quantities exhibit opposite trends in response to applied potentials on the Au electrode. We anticipate that the present work will help improve our understanding of the interfacial dynamics of water in various electrolyte systems.
了解带电界面处的水动力学在催化、生物医学过程和太阳能电池材料等各个领域都非常重要。在本研究中,我们对纯水与金电极界面的系统进行了分子动力学模拟,金电极的一侧吸附了4-巯基苯甲腈(4-MBN)分子。我们计算了各种动力学量的时间关联函数,如吸附的4-MBN分子中N原子的氢键状态、水的OH键的旋转运动、4-MBN与水之间的氢键以及界面区域水分子之间的氢键。使用卢扎尔-钱德勒模型,我们分析了4-MBN与水分子之间的氢键动力学。我们计算的动力学量可分为两类:与界面水分子的集体行为以及水分子与4-MBN的CN基团之间的氢键相互作用相关的量。我们发现,这两类动力学量在金电极上施加电势时呈现相反的趋势。我们预计,目前的工作将有助于增进我们对各种电解质系统中水的界面动力学的理解。