Cargando…

Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations

[Image: see text] New X-ray and neutron diffraction experiments have been performed on ethanol–water mixtures as a function of decreasing temperature, so that such diffraction data are now available over the entire composition range. Extensive molecular dynamics simulations show that the all-atom in...

Descripción completa

Detalles Bibliográficos
Autores principales: Pothoczki, Szilvia, Pethes, Ildikó, Pusztai, László, Temleitner, László, Ohara, Koji, Bakó, Imre
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8279560/
https://www.ncbi.nlm.nih.gov/pubmed/34078085
http://dx.doi.org/10.1021/acs.jpcb.1c03122
_version_ 1783722483460866048
author Pothoczki, Szilvia
Pethes, Ildikó
Pusztai, László
Temleitner, László
Ohara, Koji
Bakó, Imre
author_facet Pothoczki, Szilvia
Pethes, Ildikó
Pusztai, László
Temleitner, László
Ohara, Koji
Bakó, Imre
author_sort Pothoczki, Szilvia
collection PubMed
description [Image: see text] New X-ray and neutron diffraction experiments have been performed on ethanol–water mixtures as a function of decreasing temperature, so that such diffraction data are now available over the entire composition range. Extensive molecular dynamics simulations show that the all-atom interatomic potentials applied are adequate for gaining insight into the hydrogen-bonded network structure, as well as into its changes on cooling. Various tools have been exploited for revealing details concerning hydrogen bonding, as a function of decreasing temperature and ethanol concentration, like determining the H-bond acceptor and donor sites, calculating the cluster-size distributions and cluster topologies, and computing the Laplace spectra and fractal dimensions of the networks. It is found that 5-membered hydrogen-bonded cycles are dominant up to an ethanol mole fraction x(eth) = 0.7 at room temperature, above which the concentrated ring structures nearly disappear. Percolation has been given special attention, so that it could be shown that at low temperatures, close to the freezing point, even the mixture with 90% ethanol (x(eth) = 0.9) possesses a three-dimensional (3D) percolating network. Moreover, the water subnetwork also percolates even at room temperature, with a percolation transition occurring around x(eth) = 0.5.
format Online
Article
Text
id pubmed-8279560
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-82795602021-07-15 Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations Pothoczki, Szilvia Pethes, Ildikó Pusztai, László Temleitner, László Ohara, Koji Bakó, Imre J Phys Chem B [Image: see text] New X-ray and neutron diffraction experiments have been performed on ethanol–water mixtures as a function of decreasing temperature, so that such diffraction data are now available over the entire composition range. Extensive molecular dynamics simulations show that the all-atom interatomic potentials applied are adequate for gaining insight into the hydrogen-bonded network structure, as well as into its changes on cooling. Various tools have been exploited for revealing details concerning hydrogen bonding, as a function of decreasing temperature and ethanol concentration, like determining the H-bond acceptor and donor sites, calculating the cluster-size distributions and cluster topologies, and computing the Laplace spectra and fractal dimensions of the networks. It is found that 5-membered hydrogen-bonded cycles are dominant up to an ethanol mole fraction x(eth) = 0.7 at room temperature, above which the concentrated ring structures nearly disappear. Percolation has been given special attention, so that it could be shown that at low temperatures, close to the freezing point, even the mixture with 90% ethanol (x(eth) = 0.9) possesses a three-dimensional (3D) percolating network. Moreover, the water subnetwork also percolates even at room temperature, with a percolation transition occurring around x(eth) = 0.5. American Chemical Society 2021-06-03 2021-06-17 /pmc/articles/PMC8279560/ /pubmed/34078085 http://dx.doi.org/10.1021/acs.jpcb.1c03122 Text en © 2021 The Authors. Published by American Chemical Society Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Pothoczki, Szilvia
Pethes, Ildikó
Pusztai, László
Temleitner, László
Ohara, Koji
Bakó, Imre
Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title_full Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title_fullStr Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title_full_unstemmed Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title_short Properties of Hydrogen-Bonded Networks in Ethanol–Water Liquid Mixtures as a Function of Temperature: Diffraction Experiments and Computer Simulations
title_sort properties of hydrogen-bonded networks in ethanol–water liquid mixtures as a function of temperature: diffraction experiments and computer simulations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8279560/
https://www.ncbi.nlm.nih.gov/pubmed/34078085
http://dx.doi.org/10.1021/acs.jpcb.1c03122
work_keys_str_mv AT pothoczkiszilvia propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations
AT pethesildiko propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations
AT pusztailaszlo propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations
AT temleitnerlaszlo propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations
AT oharakoji propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations
AT bakoimre propertiesofhydrogenbondednetworksinethanolwaterliquidmixturesasafunctionoftemperaturediffractionexperimentsandcomputersimulations