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有机离子缔合在水相中和基于从头算的力场:羧酸根/铵盐的情况。

Organic ion association in aqueous phase and ab initio-based force fields: The case of carboxylate/ammonium salts.

机构信息

CTP-Centre Thermodynamique des Procédés, MINES ParisTech, PSL Research University, 35 rue Saint-Honoré, 77300 Fontainebleau, France.

Université Lille, CNRS, UMR 8523-PhLAM-Physique des Lasers Atomes et Molécules, F-59000 Lille, France.

出版信息

J Chem Phys. 2017 Oct 28;147(16):161720. doi: 10.1063/1.4997996.

DOI:10.1063/1.4997996
PMID:29096445
Abstract

We performed molecular dynamics simulations of carboxylate/methylated ammonium ion pairs solvated in bulk water and of carboxylate/methylated ammonium salt solutions at ambient conditions using an ab initio-based polarizable force field whose parameters are assigned to reproduce only high end quantum computations, at the Møller-Plesset second-order perturbation theory/complete basis set limit level, regarding single ions and ion pairs as isolated and micro-hydrated in gas phase. Our results agree with the available experimental results regarding carboxylate/ammonium salt solutions. For instance, our force field approach predicts the percentage of acetate associated with ammonium ions in CHCOO/CHNH solutions at the 0.2-0.8M concentration scale to range from 14% to 35%, in line with the estimates computed from the experimental ion association constant in liquid water. Moreover our simulations predict the number of water molecules released from the ion first hydration shell to the bulk upon ion association to be about 2.0 ± 0.6 molecules for acetate/protonated amine ion pairs, 3.1 ± 1.5 molecules for the HCOO/NH pair and 3.3 ± 1.2 molecules for the CHCOO/(CH)N pair. For protonated amine-based ion pairs, these values are in line with experiment for alkali/halide pairs solvated in bulk water. All these results demonstrate the promising feature of ab initio-based force fields, i.e., their capacity in accurately modeling chemical systems that cannot be readily investigated using available experimental techniques.

摘要

我们使用基于从头算的极化力场对羧酸根/甲基化铵离子对在体相水中以及羧酸根/甲基化铵盐溶液在环境条件下的溶剂化进行了分子动力学模拟,该力场的参数被设定为仅再现高端量子计算,在 Møller-Plesset 二级微扰理论/完全基组极限水平,将单离子和离子对视为在气相中孤立和微水合的。我们的结果与关于羧酸根/铵盐溶液的现有实验结果一致。例如,我们的力场方法预测在 0.2-0.8M 浓度范围内,CHCOO/CHNH 溶液中与铵离子缔合的乙酸盐的百分比范围为 14%至 35%,与从实验离子缔合常数在液态水中计算出的估计值一致。此外,我们的模拟预测,在离子缔合时,从离子第一水合壳层释放到体相的水分子数约为 2.0±0.6 个对于乙酸盐/质子化胺离子对,HCOO/NH 对为 3.1±1.5 个,CHCOO/(CH)N 对为 3.3±1.2 个。对于质子化胺基离子对,这些值与在体相水中溶剂化的碱/卤化物对的实验值一致。所有这些结果都证明了基于从头算的力场的有希望的特点,即它们在准确模拟无法使用现有实验技术进行研究的化学系统方面的能力。

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