Riera Marc, Brown Sandra E, Paesani Francesco
J Phys Chem A. 2018 Jul 12;122(27):5811-5821. doi: 10.1021/acs.jpca.8b04106. Epub 2018 Jun 29.
A quantitative characterization of the molecular mechanisms that regulate ion solvation is key to the microscopic understanding of fundamental processes taking place in aqueous environments with major implications for different fields, from atmospheric chemistry to materials research and biochemistry. This study presents a systematic analysis of isomeric equilibria for small M(HO) clusters, with M = Li, Na, K, Rb, and Cs, from 0 to 200 K. To determine the relative stability of different isomers of each M(HO) cluster as a function of temperature, replica exchange simulations are carried out at both classical and quantum levels with the recently developed many-body MB-nrg potential energy functions, which have been shown to exhibit chemical accuracy. Anharmonic vibrational spectra are then calculated within the local monomer approximation and found to be in agreement with the available experimental data, providing further support for the accuracy of the MB-nrg potential energy functions. The present analysis indicates that nuclear quantum effects become increasingly important for larger M(HO) clusters containing the heavier alkali metal ions, which is explained in terms of competing ion-water and water-water interactions along with the interplay between energetic and entropic effects. By directly connecting experimental measurements with molecular properties calculated at the quantum mechanical level, this study represents a further step toward the development of a consistent picture of ion hydration from the gas to the condensed phase.
对调节离子溶剂化的分子机制进行定量表征,是从微观层面理解在水性环境中发生的基本过程的关键,这对从大气化学到材料研究和生物化学等不同领域都有重大影响。本研究对M = Li、Na、K、Rb和Cs的小M(HO)簇在0至200 K温度范围内的异构平衡进行了系统分析。为了确定每个M(HO)簇不同异构体的相对稳定性随温度的变化,使用最近开发的具有化学精度的多体MB-nrg势能函数,在经典和量子水平上进行了副本交换模拟。然后在局部单体近似下计算非谐振动光谱,发现其与现有实验数据一致,为MB-nrg势能函数的准确性提供了进一步支持。目前的分析表明,对于含有较重碱金属离子的较大M(HO)簇,核量子效应变得越来越重要,这可以通过竞争的离子-水和水-水相互作用以及能量和熵效应之间的相互作用来解释。通过直接将实验测量与在量子力学水平上计算的分子性质联系起来,本研究朝着建立从气相到凝聚相的一致离子水合图像又迈进了一步。