4.8 Article

Development and validation of an integrated computational approach for the study of ionic species in solution by means of effective two-body potentials.: The case of Zn2+, Ni2+, and Co2+ in aqueous solutions

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 124, Issue 9, Pages 1968-1976

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ja015686p

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In this paper we have developed an effective computational procedure for the structural and dynamical investigation of ions in aqueous solutions. Quantum mechanical potential energy surfaces for the interaction of a transition metal ion with a water molecule have been calculated taking into account the effect of bulk solvent by the polarizable continuum model (PCM), The effective ion-water interactions have been fitted by suitable analytical potentials, and have been utilized in molecular dynamics (MD) simulations to obtain structural and dynamical properties of the ionic aqueous solutions, This procedure has been successfully applied to the Co2+-H2O open-shell system and, for the first time, Co-oxygen and Co-hydrogen pair potential functions have been determined and employed in MD simulations. The reliability of the whole procedure has been assessed by applying it also to the Zn2+, and Ni2+ aqueous solutions, and the structural and dynamical properties of the three systems have been calculated by means of MD simulations and have been found to be in very good agreement with experimental results, The structural parameters of the first solvation shells issuing from the MD simulations provide an effective complement to extended X-ray absorption fine structure (EXAFS) experiments.

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