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液态水中额外质子水合的红外光谱分配。

IR spectral assignments for the hydrated excess proton in liquid water.

机构信息

Department of Chemistry, James Franck Institute, and Institute for Biophysical Dynamics, The University of Chicago, Chicago, Illinois 60637, USA.

出版信息

J Chem Phys. 2017 Apr 21;146(15):154507. doi: 10.1063/1.4980121.

Abstract

The local environmental sensitivity of infrared (IR) spectroscopy to a hydrogen-bonding structure makes it a powerful tool for investigating the structure and dynamics of excess protons in water. Although of significant interest, the line broadening that results from the ultrafast evolution of different solvated proton-water structures makes the assignment of liquid-phase IR spectra a challenging task. In this work, we apply a normal mode analysis using density functional theory of thousands of proton-water clusters taken from reactive molecular dynamics trajectories of the latest generation multistate empirical valence bond proton model (MS-EVB 3.2). These calculations are used to obtain a vibrational density of states and IR spectral density, which are decomposed on the basis of solvated proton structure and the frequency dependent mode character. Decompositions are presented on the basis of the proton sharing parameter δ, often used to distinguish Eigen and Zundel species, the stretch and bend character of the modes, the mode delocalization, and the vibrational mode symmetry. We find there is a wide distribution of vibrational frequencies spanning 1200-3000 cm for every local proton configuration, with the region 2000-2600 cm being mostly governed by the distorted Eigen-like configuration. We find a continuous red shift of the special-pair O⋯H⋯O stretching frequency, and an increase in the flanking water bending intensity with decreasing δ. Also, we find that the flanking water stretch mode of the Zundel-like species is strongly mixed with the flanking water bend, and the special pair proton oscillation band is strongly coupled with the bend modes of the central HO2+moiety.

摘要

红外(IR)光谱对氢键结构的局部环境敏感性使其成为研究水中过剩质子结构和动力学的有力工具。尽管具有重要意义,但由于不同溶剂化质子-水结构的超快演变导致的谱线展宽,使得液体 IR 光谱的分配成为一项具有挑战性的任务。在这项工作中,我们应用密度泛函理论对来自最新一代多态经验价键质子模型(MS-EVB 3.2)的反应分子动力学轨迹中数千个质子-水团簇进行了正则模态分析。这些计算用于获得振动态密度和 IR 光谱密度,并基于溶剂化质子结构和频率相关模式特征进行分解。分解基于质子共享参数 δ 进行呈现,δ 常用于区分 Eigen 和 Zundel 物种,模式的伸缩和弯曲特征,模式离域和振动模式对称性。我们发现,对于每种局部质子构型,振动频率分布广泛,跨越 1200-3000 cm,区域 2000-2600 cm 主要由畸变的 Eigen 类似构型控制。我们发现特殊对 O⋯H⋯O 伸缩频率的特殊红移,以及随着 δ 的减小,侧翼水弯曲强度的增加。此外,我们发现 Zundel 类似物种的侧翼水伸缩模式与侧翼水弯曲强烈混合,特殊对质子振动带与中心 HO2+部分的弯曲模式强烈耦合。

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