Published 2013 | Version v1
Journal article

Further insights in the ability of classical non additive potentials to model actinide ion-water interactions

  • 1. Universite Lille 1 - Sciences et Technologies, Laboratoire PhLAM, CNRS UMR 8523, Bat P5, F-59655 Villeneuve d'Ascq Cedex, (France)
  • 2. Institut fur Nukleare Entsorgung - INE, Karlsruhe Institute of Technology - KIT, Postfach 3640, D-76021 Karlsruhe, (Germany)
  • 3. Laboratoire de Chimie du Vivant, Service d'ingenierie moleculaire des proteines, Institut de biologie et de technologies de Saclay, CEA Saclay, F-91191 Gif sur Yvette Cedex, (France)

Description

Pursuing our efforts on the development of accurate classical models to simulate radionuclides in complex environments (Real et al., J. Phys. Chem. A 2010, 114, 15913; Trumm et al. J. Chem. Phys. 2012, 136, 044509), this article places a large emphasis on the discussion of the influence of models/parameters uncertainties on the computed structural, dynamical, and temporal properties. Two actinide test cases, trivalent curium and tetravalent thorium, have been studied with three different potential energy functions, which allow us to account for the polarization and charge-transfer effects occurring in hydrated actinide ion systems. The first type of models considers only an additive energy term for modeling ion/water charge-transfer effects, whereas the other two treat cooperative charge-transfer interactions with two different analytical expressions. Model parameters are assigned to reproduce high-level ab initio data concerning only hydrated ion species in gas phase. For the two types of cooperative charge-transfer models, we define two sets of parameters allowing or not to cancel out possible errors inherent to the force field used to model water/water interactions at the ion vicinity. We define thus five different models to characterize the solvation of each ion. For both ions, our cooperative charge-transfer models lead to close results in terms of structure in solution: the coordination number is included within 8 and 9, and the mean ion/water oxygen distances are 2.45 and 2.49 Angstroms, respectively, for Th(IV) and Cm(III). (authors)

Availability note (English)

Available from doi: http://dx.doi.org/10.1002/jcc.23184

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Computational Chemistry
Journal Volume
34
Journal Page Range
p. 707-719
ISSN
0192-8651

INIS

Country of Publication
United States
Country of Input or Organization
France
INIS RN
47028738
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Descriptors DEI
ACCURACY; COMPUTERIZED SIMULATION; COORDINATION NUMBER; CURIUM; POLARIZATION; POTENTIAL ENERGY; QUANTUM MECHANICS; SOLVATION; THORIUM
Descriptors DEC
ACTINIDES; ELEMENTS; ENERGY; MECHANICS; METALS; SIMULATION; TRANSPLUTONIUM ELEMENTS; TRANSURANIUM ELEMENTS

Optional Information

Notes
64 refs.