Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models
We employed molecular dynamics simulations with separate thermostats for translational and rotational temperatures in order to study the effects of these degrees of freedom on the hydration of ions. In this work we examine how water models, differing in charge distribution, respond to rise of the ro...
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doaj-f35bf8c5cf84433c99ebaee96b63d27b2020-11-25T01:59:35ZengSlovenian Chemical SocietyActa Chimica Slovenica1318-02071580-31552015-04-0162348949710.17344/acsi.2014.1291243Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water ModelsTomaž Mohorič0Urban Bren1Vojko Vlachy2FKKT, University of LjubljanaNational Institute of Chemistry, Slovenia; FKKT, University of MariborFKKT, University of LjubljanaWe employed molecular dynamics simulations with separate thermostats for translational and rotational temperatures in order to study the effects of these degrees of freedom on the hydration of ions. In this work we examine how water models, differing in charge distribution, respond to rise of the rotational temperature. The study shows that popular water models can be divided, with respect to the distribution of negative charge, into two groups leading to a different response upon an increase in the rotational temperature. Differences arise in the hydration of cations, as the negative charge distribution on the model solvent represents the determining factor in such cases. The cation-water correlation increases with the increasing rotational temperature when negative charge is placed in (or close to) the centre of the water molecule (a typical example is the SPC water model) and decreases when the negative charge is shifted from its centre (as in the TIP5P model of water). Since all the water models examined here have similar distributions of positive charge, they all exhibit similar trends in solvation of anions upon an increase of rotational temperature. As expected, the effect of translational temperature variation is the same for all water models studied; any increase in translational temperature decreases the solute-water correlations.https://journals.matheo.si/index.php/ACSi/article/view/1291ionic hydrationwater modelsdegrees of freedommolecular dynamics |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tomaž Mohorič Urban Bren Vojko Vlachy |
spellingShingle |
Tomaž Mohorič Urban Bren Vojko Vlachy Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models Acta Chimica Slovenica ionic hydration water models degrees of freedom molecular dynamics |
author_facet |
Tomaž Mohorič Urban Bren Vojko Vlachy |
author_sort |
Tomaž Mohorič |
title |
Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models |
title_short |
Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models |
title_full |
Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models |
title_fullStr |
Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models |
title_full_unstemmed |
Effects of Translational and Rotational Degrees of Freedom on the Hydration of Ionic Solutes as Seen by Popular Water Models |
title_sort |
effects of translational and rotational degrees of freedom on the hydration of ionic solutes as seen by popular water models |
publisher |
Slovenian Chemical Society |
series |
Acta Chimica Slovenica |
issn |
1318-0207 1580-3155 |
publishDate |
2015-04-01 |
description |
We employed molecular dynamics simulations with separate thermostats for translational and rotational temperatures in order to study the effects of these degrees of freedom on the hydration of ions. In this work we examine how water models, differing in charge distribution, respond to rise of the rotational temperature. The study shows that popular water models can be divided, with respect to the distribution of negative charge, into two groups leading to a different response upon an increase in the rotational temperature. Differences arise in the hydration of cations, as the negative charge distribution on the model solvent represents the determining factor in such cases. The cation-water correlation increases with the increasing rotational temperature when negative charge is placed in (or close to) the centre of the water molecule (a typical example is the SPC water model) and decreases when the negative charge is shifted from its centre (as in the TIP5P model of water). Since all the water models examined here have similar distributions of positive charge, they all exhibit similar trends in solvation of anions upon an increase of rotational temperature. As expected, the effect of translational temperature variation is the same for all water models studied; any increase in translational temperature decreases the solute-water correlations. |
topic |
ionic hydration water models degrees of freedom molecular dynamics |
url |
https://journals.matheo.si/index.php/ACSi/article/view/1291 |
work_keys_str_mv |
AT tomazmohoric effectsoftranslationalandrotationaldegreesoffreedomonthehydrationofionicsolutesasseenbypopularwatermodels AT urbanbren effectsoftranslationalandrotationaldegreesoffreedomonthehydrationofionicsolutesasseenbypopularwatermodels AT vojkovlachy effectsoftranslationalandrotationaldegreesoffreedomonthehydrationofionicsolutesasseenbypopularwatermodels |
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