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量子化学和分子动力学研究四价钍在水溶剂中的配位。

Quantum chemical and molecular dynamics study of the coordination of Th(IV) in aqueous solvent.

机构信息

Université Lille 1 (Sciences et Technologies), Laboratoire PhLAM, CNRS UMR 8523, CERLA, CNRS FR 2416, Bât P5, F-59655 Villeneuve d'Ascq Cedex, France.

出版信息

J Phys Chem B. 2010 Dec 9;114(48):15913-24. doi: 10.1021/jp108061s. Epub 2010 Nov 11.

Abstract

In this work, we investigate the solvation of tetravalent thorium Th(IV) in aqueous solution using classical molecular dynamics simulations at the 10 ns scale and based on polarizable force-field approaches, which treat explicitly the covalent character of the metal-water interaction (and its inherent cooperative character). We have carried out a thorough analysis of the accuracy of the ab initio data that we used to adjust the force-field parameters. In particular, we show that large atomic basis sets combined with wave function-based methods (such as the MP2 level) have to be preferred to density functional theory when investigating Th(IV)/water aggregates in gas phase. The information extracted from trajectories in solution shows a well-structured Th(IV) first hydration shell formed of 8.25 ± 0.2 water molecules and located at about 2.45 ± 0.02 Å and a second shell of 17.5 ± 0.5 water molecules at about 4.75 Å. Concerning the first hydration sphere, our results correspond to the lower bounds of experimental estimates (which range from 8 to 12.7); however, they are in very good agreement with the average of existing experimental data, 2.45 ± 0.02 Å. All our results demonstrate the predictable character of the proposed approach, as well as the need of accounting explicitly for the cooperative character of charge-transfer phenomena affecting the Th(IV)/water interaction to build up reliable and accurate force-field approaches devoted to such studies.

摘要

在这项工作中,我们使用经典分子动力学模拟在 10 ns 尺度上,基于可极化力场方法,研究了四价钍 Th(IV) 在水溶液中的溶剂化作用,该方法明确处理了金属-水相互作用的共价性质(及其固有协同性质)。我们对用于调整力场参数的从头算数据的准确性进行了彻底分析。特别是,我们表明,在气相中研究 Th(IV)/水聚集体时,必须优先选择大原子基组与基于波函数的方法(如 MP2 水平),而不是密度泛函理论。从溶液中的轨迹中提取的信息显示了一个结构良好的 Th(IV)第一水合壳,由 8.25 ± 0.2 个水分子组成,位于约 2.45 ± 0.02 Å 处,第二个水合壳由 17.5 ± 0.5 个水分子组成,位于约 4.75 Å 处。关于第一水合层,我们的结果对应于实验估计值的下限(范围从 8 到 12.7);然而,它们与现有的实验数据平均值 2.45 ± 0.02 Å 非常吻合。我们所有的结果都证明了所提出方法的可预测性,以及明确考虑影响 Th(IV)/水相互作用的电荷转移现象的协同性质的必要性,以建立可靠和准确的力场方法,用于此类研究。

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