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U(IV)和Np(IV)离子的水合结构与水解:使用改进的连续介质溶剂化方法的比较密度泛函研究

Hydration Structure and Hydrolysis of U(IV) and Np(IV) Ions: A Comparative Density Functional Study Using a Modified Continuum Solvation Approach.

作者信息

Shor Aleksey M, Ivanova-Shor Elena A, Chiorescu Ion, Krüger Sven, Rösch Notker

机构信息

Institute of Chemistry and Chemical Technology SB RAS, Federal Research Center "Krasnoyarsk Scientific Center SB RAS", 660036 Krasnoyarsk, Russia.

Department Chemie, Technische Universität München, Lichtenbergstr. 4, 85747 Garching, Germany.

出版信息

J Phys Chem A. 2020 May 14;124(19):3805-3814. doi: 10.1021/acs.jpca.9b11862. Epub 2020 Apr 29.

Abstract

We studied the hydration and the first hydrolysis reaction of U(IV) and Np(IV) ions in an aqueous environment, applying a relativistic density functional method together with a recently proposed variant of a continuum solvation model where the solute cavities are constructed with effective atomic radii, based on charge-dependent scaling factors. In this way, one obtains improved solvation energies of charged species. We demonstrate that solute cavities, constructed with scaled atomic radii as described, permit one to calculate hydrolysis constants of acceptable accuracy. As a consequence, one is also able to estimate free hydration energies of U(IV) and Np(IV) in adequate agreement with empirical data. According to the model calculations, U(IV) is coordinated by eight to nine water molecules, while the preferred coordination number of Np(IV) is 8. For the highly charged ions under study, the modified solvation model simultaneously yields improved geometries, hydration energies, and hydrolysis constants.

摘要

我们运用相对论密度泛函方法以及最近提出的一种连续介质溶剂化模型的变体,在水环境中研究了U(IV)和Np(IV)离子的水合作用及首次水解反应。在该模型中,溶质空腔是根据电荷依赖的缩放因子,用有效原子半径构建的。通过这种方式,可以得到带电物种改进的溶剂化能。我们证明,如所述用缩放原子半径构建的溶质空腔,能够计算出具有可接受精度的水解常数。因此,也能够估算出与实验数据充分吻合的U(IV)和Np(IV)的自由水合能。根据模型计算,U(IV)由八到九个水分子配位,而Np(IV)的首选配位数为8。对于所研究的高电荷离子,改进的溶剂化模型同时给出了改进的几何结构、水合能和水解常数。

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