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Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy

We present an atomistic simulation scheme for the determination of the hydration number (h) of aqueous electrolyte solutions based on the calculation of the water dipole reorientation dynamics. In this methodology, the time evolution of an aqueous electrolyte solution generated from ab initio molecu...

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Autores principales: Kim, Seonmyeong, Wang, Xiangwen, Jang, Jeongmin, Eom, Kihoon, Clegg, Simon L., Park, Gun‐Sik, Di Tommaso, Devis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7702081/
https://www.ncbi.nlm.nih.gov/pubmed/32866322
http://dx.doi.org/10.1002/cphc.202000498
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author Kim, Seonmyeong
Wang, Xiangwen
Jang, Jeongmin
Eom, Kihoon
Clegg, Simon L.
Park, Gun‐Sik
Di Tommaso, Devis
author_facet Kim, Seonmyeong
Wang, Xiangwen
Jang, Jeongmin
Eom, Kihoon
Clegg, Simon L.
Park, Gun‐Sik
Di Tommaso, Devis
author_sort Kim, Seonmyeong
collection PubMed
description We present an atomistic simulation scheme for the determination of the hydration number (h) of aqueous electrolyte solutions based on the calculation of the water dipole reorientation dynamics. In this methodology, the time evolution of an aqueous electrolyte solution generated from ab initio molecular dynamics simulations is used to compute the reorientation time of different water subpopulations. The value of h is determined by considering whether the reorientation time of the water subpopulations is retarded with respect to bulk‐like behavior. The application of this computational protocol to magnesium chloride (MgCl(2)) solutions at different concentrations (0.6–2.8 mol kg(−1)) gives h values in excellent agreement with experimental hydration numbers obtained using GHz‐to‐THz dielectric relaxation spectroscopy. This methodology is attractive because it is based on a well‐defined criterion for the definition of hydration number and provides a link with the molecular‐level processes responsible for affecting bulk solution behavior. Analysis of the ab initio molecular dynamics trajectories using radial distribution functions, hydrogen bonding statistics, vibrational density of states, water‐water hydrogen bonding lifetimes, and water dipole reorientation reveals that MgCl(2) has a considerable influence on the hydrogen bond network compared with bulk water. These effects have been assigned to the specific strong Mg‐water interaction rather than the Cl‐water interaction.
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spelling pubmed-77020812020-12-14 Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy Kim, Seonmyeong Wang, Xiangwen Jang, Jeongmin Eom, Kihoon Clegg, Simon L. Park, Gun‐Sik Di Tommaso, Devis Chemphyschem Articles We present an atomistic simulation scheme for the determination of the hydration number (h) of aqueous electrolyte solutions based on the calculation of the water dipole reorientation dynamics. In this methodology, the time evolution of an aqueous electrolyte solution generated from ab initio molecular dynamics simulations is used to compute the reorientation time of different water subpopulations. The value of h is determined by considering whether the reorientation time of the water subpopulations is retarded with respect to bulk‐like behavior. The application of this computational protocol to magnesium chloride (MgCl(2)) solutions at different concentrations (0.6–2.8 mol kg(−1)) gives h values in excellent agreement with experimental hydration numbers obtained using GHz‐to‐THz dielectric relaxation spectroscopy. This methodology is attractive because it is based on a well‐defined criterion for the definition of hydration number and provides a link with the molecular‐level processes responsible for affecting bulk solution behavior. Analysis of the ab initio molecular dynamics trajectories using radial distribution functions, hydrogen bonding statistics, vibrational density of states, water‐water hydrogen bonding lifetimes, and water dipole reorientation reveals that MgCl(2) has a considerable influence on the hydrogen bond network compared with bulk water. These effects have been assigned to the specific strong Mg‐water interaction rather than the Cl‐water interaction. John Wiley and Sons Inc. 2020-09-30 2020-10-16 /pmc/articles/PMC7702081/ /pubmed/32866322 http://dx.doi.org/10.1002/cphc.202000498 Text en © 2020 The Authors. Published by Wiley-VCH GmbH This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Kim, Seonmyeong
Wang, Xiangwen
Jang, Jeongmin
Eom, Kihoon
Clegg, Simon L.
Park, Gun‐Sik
Di Tommaso, Devis
Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title_full Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title_fullStr Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title_full_unstemmed Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title_short Hydrogen‐Bond Structure and Low‐Frequency Dynamics of Electrolyte Solutions: Hydration Numbers from ab Initio Water Reorientation Dynamics and Dielectric Relaxation Spectroscopy
title_sort hydrogen‐bond structure and low‐frequency dynamics of electrolyte solutions: hydration numbers from ab initio water reorientation dynamics and dielectric relaxation spectroscopy
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7702081/
https://www.ncbi.nlm.nih.gov/pubmed/32866322
http://dx.doi.org/10.1002/cphc.202000498
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