Please use this identifier to cite or link to this item: https://libjncir.jncasr.ac.in/xmlui/handle/10572/2370
Title: Quantitative Prediction of Physical Properties of Imidazolium Based Room Temperature Ionic Liquids through Determination of Condensed Phase Site Charges: A Refined Force Field
Authors: Mondal, Anirban
Balasubramanian, Sundaram
Keywords: Physical Chemistry
Molecular-Dynamics Simulations
Cambridge Structural Database
Alkyl Chain-Length
Physicochemical Properties
Transport-Properties
Atomic Charges
1-Butyl-3-Methylimidazolium Hexafluorophosphate
1-Alkyl-3-Methylimidazolium Chloride
1,3-Dimethylimidazolium Chloride
Differential Capacitance
Issue Date: 2014
Publisher: American Chemical Society
Citation: Mondal, A; Balasubramanian, S, Quantitative Prediction of Physical Properties of Imidazolium Based Room Temperature Ionic Liquids through Determination of Condensed Phase Site Charges: A Refined Force Field. Journal of Physical Chemistry B 2014, 118 (12) 3409-3422, http://dx.doi.org/10.1021/jp500296x
Journal of Physical Chemistry B
118
12
Abstract: Quantitative prediction of physical properties of room temperature ionic liquids through nonpolarizable force field based molecular dynamics simulations is a challenging task. The challenge lies in the fact that mean ion charges in the condensed phase can be less than unity due to polarization and charge transfer effects whose magnitude cannot be fully captured through quantum chemical calculations conducted in the gas phase. The present work employed the density-derived electrostatic and chemical (DDEC/c3) charge partitioning method to calculate site charges of ions using electronic charge densities obtained from periodic density functional theory (DFT) calculations of their crystalline phases. The total ion charges obtained thus range between -0.6e for chloride and -0.8e for the PF6 ion. The mean value of the ion charges obtained from DFT calculations of an ionic liquid closely matches that obtained from the corresponding crystal thus confirming the suitability of using crystal site charges in simulations of liquids. These partial charges were deployed within the well-established force field developed by Lopes et al., and consequently, parameters of its nonbonded and torsional interactions were refined to ensure that they reproduced quantum potential energy scans for ion pairs in the gas phase. The refined force field was employed in simulations of seven ionic liquids with six different anions. Nearly quantitative agreement with experimental measurements was obtained for the density, surface tension, enthalpy of vaporization, and ion diffusion coefficients.
Description: Restricted Access
URI: https://libjncir.jncasr.ac.in/xmlui/10572/2370
ISSN: 1520-6106
Appears in Collections:Research Articles (Balasubramanian Sundaram)

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