Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique

We use the Grand Canonical Adaptive Resolution Molecular Dynamics Technique (GC-AdResS) to examine the essential degrees of freedom necessary for reproducing the structural properties of the imidazolium class of ionic liquids. In this technique, the atomistic details are treated as an open sub-regio...

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Main Authors: B. Shadrack Jabes, Christian Krekeler
Format: Article
Language:English
Published: MDPI AG 2018-02-01
Series:Computation
Subjects:
Online Access:http://www.mdpi.com/2079-3197/6/1/23
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spelling doaj-12beb78ca150403bbaa32d2d040d0c8b2020-11-24T22:20:05ZengMDPI AGComputation2079-31972018-02-01612310.3390/computation6010023computation6010023Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics TechniqueB. Shadrack Jabes0Christian Krekeler1Institute for Mathematics, Freie Universitat Berlin, D-14195 Berlin, GermanyInstitute for Mathematics, Freie Universitat Berlin, D-14195 Berlin, GermanyWe use the Grand Canonical Adaptive Resolution Molecular Dynamics Technique (GC-AdResS) to examine the essential degrees of freedom necessary for reproducing the structural properties of the imidazolium class of ionic liquids. In this technique, the atomistic details are treated as an open sub-region of the system while the surrounding environment is modelled as a generic coarse-grained model. We systematically characterize the spatial quantities such as intramolecular, intermolecular radial distribution functions, other structural and orientational properties of ILs. The spatial quantities computed in an open sub-region of the system are in excellent agreement with the equivalent quantities calculated in a full atomistic simulation, suggesting that the atomistic degrees of freedom outside the sub-region are negligible. The size of the sub-region considered in this study is 2 nm, which is essentially the size of a few ions. Insight from the study suggests that a higher degree of spatial locality seems to play a crucial role in characterizing the properties of imidazolium based ionic liquids.http://www.mdpi.com/2079-3197/6/1/23GC-AdResSimidazolium based ionic liquidsmultiscale molecular dynamics
collection DOAJ
language English
format Article
sources DOAJ
author B. Shadrack Jabes
Christian Krekeler
spellingShingle B. Shadrack Jabes
Christian Krekeler
Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
Computation
GC-AdResS
imidazolium based ionic liquids
multiscale molecular dynamics
author_facet B. Shadrack Jabes
Christian Krekeler
author_sort B. Shadrack Jabes
title Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
title_short Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
title_full Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
title_fullStr Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
title_full_unstemmed Ionic Liquids Treated within the Grand Canonical Adaptive Resolution Molecular Dynamics Technique
title_sort ionic liquids treated within the grand canonical adaptive resolution molecular dynamics technique
publisher MDPI AG
series Computation
issn 2079-3197
publishDate 2018-02-01
description We use the Grand Canonical Adaptive Resolution Molecular Dynamics Technique (GC-AdResS) to examine the essential degrees of freedom necessary for reproducing the structural properties of the imidazolium class of ionic liquids. In this technique, the atomistic details are treated as an open sub-region of the system while the surrounding environment is modelled as a generic coarse-grained model. We systematically characterize the spatial quantities such as intramolecular, intermolecular radial distribution functions, other structural and orientational properties of ILs. The spatial quantities computed in an open sub-region of the system are in excellent agreement with the equivalent quantities calculated in a full atomistic simulation, suggesting that the atomistic degrees of freedom outside the sub-region are negligible. The size of the sub-region considered in this study is 2 nm, which is essentially the size of a few ions. Insight from the study suggests that a higher degree of spatial locality seems to play a crucial role in characterizing the properties of imidazolium based ionic liquids.
topic GC-AdResS
imidazolium based ionic liquids
multiscale molecular dynamics
url http://www.mdpi.com/2079-3197/6/1/23
work_keys_str_mv AT bshadrackjabes ionicliquidstreatedwithinthegrandcanonicaladaptiveresolutionmoleculardynamicstechnique
AT christiankrekeler ionicliquidstreatedwithinthegrandcanonicaladaptiveresolutionmoleculardynamicstechnique
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