A new ab initio interaction potential based on the hydrated ion concept has been developed to obtain the structure, energetics, and dynamics of the hydration of uranyl in aqueous solution. It is the first force field that explicitly parameterizes the interaction of the uranyl hydrate with bulk water molecules to accurately define the second-shell behavior. The presents a first hydration shell U–O average distance of 2.46 Å and a second hydration shell peak at 4.61 Å corresponding to 22 molecules using a coordination number definition based on a multisite solute cavity. The second shell solvent molecules have longer mean residence times than those corresponding to the divalent monatomic cations. The axial regions are relatively de-populated, lacking direct hydrogen bonding to apical oxygens. Angle-solved radial distribution functions as well as the spatial distribution functions show a strong anisotropy in the ion hydration. The solvent structure may be regarded as a combination of a conventional second hydration shell in the equatorial and bridge regions, and a clathrate-like low density region in the axial region. Translational diffusion coefficient, hydration enthalpy, power spectra of the main vibrational modes, and the EXAFS spectrum simulated from molecular dynamics trajectories agree fairly well with the experiment.
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14 December 2016
Research Article|
December 15 2016
A hydrated ion model of in water: Structure, dynamics, and spectroscopy from classical molecular dynamics
Sergio Pérez-Conesa;
Sergio Pérez-Conesa
Departamento de Química Física,
Universidad de Seville
, 41012 Seville, Spain
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Francisco Torrico;
Francisco Torrico
Departamento de Química Física,
Universidad de Seville
, 41012 Seville, Spain
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José M. Martínez;
José M. Martínez
Departamento de Química Física,
Universidad de Seville
, 41012 Seville, Spain
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Rafael R. Pappalardo;
Rafael R. Pappalardo
Departamento de Química Física,
Universidad de Seville
, 41012 Seville, Spain
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Enrique Sánchez Marcos
Departamento de Química Física,
Universidad de Seville
, 41012 Seville, Spain
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a)
Electronic mail: [email protected]
J. Chem. Phys. 145, 224502 (2016)
Article history
Received:
September 22 2016
Accepted:
November 21 2016
Citation
Sergio Pérez-Conesa, Francisco Torrico, José M. Martínez, Rafael R. Pappalardo, Enrique Sánchez Marcos; A hydrated ion model of in water: Structure, dynamics, and spectroscopy from classical molecular dynamics. J. Chem. Phys. 14 December 2016; 145 (22): 224502. https://doi.org/10.1063/1.4971432
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