In this work, we investigate the hydration of the halide ions fluoride, chloride, and bromide using classical molecular dynamics simulations at the 10 ns scale and based on a polarizable force-field approach, which treats explicitly the cooperative bond character of strong hydrogen bond networks. We have carried out a thorough analysis of the ab initio data at the MP2 or CCSD(T) level concerning anion/water clusters in gas phase to adjust the force-field parameters. In particular, we consider the anion static polarizabilities computed in gas phase using large atomic basis sets including additional diffuse functions. The information extracted from trajectories in solution shows well structured first hydration shells formed of 6.7, 7.0, and 7.6 water molecules at about 2.78 Å, 3.15 Å, and 3.36 Å for fluoride, chloride, and bromide, respectively. These results are in excellent agreement with the latest neutron- and x-ray diffraction studies. In addition, our model reproduces several other properties of halide ions in solution, such as diffusion coefficients, description of hydration processes, and exchange reactions. Moreover, it is also able to reproduce the electrostatic properties of the anions in solution (in terms of anion dipole moment) as reported by recent ab initio quantum simulations. All the results show the ability of the proposed model in predicting data, as well as the need of accounting explicitly for the cooperative character of strong hydrogen bonds to reproduce ab initio potential energy surfaces in a mean square sense and to build up a reliable force field.
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28 January 2012
Research Article|
January 24 2012
Modeling the hydration of mono-atomic anions from the gas phase to the bulk phase: The case of the halide ions F−, Cl−, and Br−
Michael Trumm;
Michael Trumm
1Institut für Nukleare Entsorgung (INE),
Karlsruher Institut für Technologie (KIT)
, Postfach 3640, D-76021 Karlsruhe, Germany
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Yansel Omar Guerrero Martínez;
Yansel Omar Guerrero Martínez
2
Université Lille 1 (Sciences et Technologies)
, Laboratoire PhLAM, CNRS UMR 8523, CERLA, CNRS FR 2416, Bât P5, F-59655 Villeneuve d'Ascq Cedex, France
3
Instituto Superior de Tecnologías y Ciencias Aplicadas
, Quinta de los Molinos, Avenida Salvador Allende y Luaces, Plaza C. Habana, Cuba
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Florent Réal;
Florent Réal
2
Université Lille 1 (Sciences et Technologies)
, Laboratoire PhLAM, CNRS UMR 8523, CERLA, CNRS FR 2416, Bât P5, F-59655 Villeneuve d'Ascq Cedex, France
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Michel Masella;
Michel Masella
4Laboratoire de Chimie du Vivant, Service d'ingénierie moléculaire des protéines,
Institut de biologie et de technologies de Saclay
, CEA Saclay, F-91191 Gif sur Yvette Cedex, France
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Valérie Vallet;
Valérie Vallet
2
Université Lille 1 (Sciences et Technologies)
, Laboratoire PhLAM, CNRS UMR 8523, CERLA, CNRS FR 2416, Bât P5, F-59655 Villeneuve d'Ascq Cedex, France
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Bernd Schimmelpfennig
Bernd Schimmelpfennig
a)
1Institut für Nukleare Entsorgung (INE),
Karlsruher Institut für Technologie (KIT)
, Postfach 3640, D-76021 Karlsruhe, Germany
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a)
Electronic mail: Bernd.Schimmelpfennig@kit.edu.
J. Chem. Phys. 136, 044509 (2012)
Article history
Received:
October 06 2011
Accepted:
December 31 2011
Citation
Michael Trumm, Yansel Omar Guerrero Martínez, Florent Réal, Michel Masella, Valérie Vallet, Bernd Schimmelpfennig; Modeling the hydration of mono-atomic anions from the gas phase to the bulk phase: The case of the halide ions F−, Cl−, and Br−. J. Chem. Phys. 28 January 2012; 136 (4): 044509. https://doi.org/10.1063/1.3678294
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