Quantum Mechanical Continuum
Solvation Models for
Ionic Liquids
Posted on 2012-08-02 - 00:00
The quantum mechanical SMD continuum universal solvation
model
can be applied to predict the free energy of solvation of any solute
in any solvent following specification of various macroscopic solvent
parameters. For three ionic liquids where these descriptors are readily
available, the SMD solvation model exhibits a mean unsigned error
of 0.48 kcal/mol for 93 solvation free energies of neutral solutes
and a mean unsigned error of 1.10 kcal/mol for 148 water-to-IL transfer
free energies. Because the necessary solvent parameters are not always available for a given ionic liquid, we determine
average values for a set of ionic liquids over which measurements have been made in order to define a generic ionic liquid
solvation model, SMD-GIL. Considering 11 different ionic liquids,
the SMD-GIL solvation model exhibits a mean unsigned error of 0.43
kcal/mol for 344 solvation free energies of neutral solutes and a
mean unsigned error of 0.61 kcal/mol for 431 water-to-IL transfer
free energies. As these errors are similar in magnitude to those typically
observed when applying continuum solvation models to ordinary liquids,
we conclude that the SMD universal solvation model may be applied
to ionic liquids as well as ordinary liquids.
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Bernales, Varinia
S.; Marenich, Aleksandr V.; Contreras, Renato; Cramer, Christopher J.; Truhlar, Donald G. (2016). Quantum Mechanical Continuum
Solvation Models for
Ionic Liquids. ACS Publications. Collection. https://doi.org/10.1021/jp304365v