Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups

© 2018 Grand Canonical Monte Carlo simulation of methanol adsorption on a graphite model with two hydroxyl groups grafted on the surface has been carried out to investigate the effects of temperature in the range of 278-360 K. The spacing between the OH groups was chosen so that two hydrogen bonds c...

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Main Authors: Waralee Dilokekunakul, Nikom Klomkliang, Somsak Supasitmongkol, Somboon Chaemchuen, D. D. Do, D. Nicholson
Other Authors: University of Queensland
Format: Article
Published: 2019
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/45417
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spelling th-mahidol.454172019-08-23T18:05:25Z Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups Waralee Dilokekunakul Nikom Klomkliang Somsak Supasitmongkol Somboon Chaemchuen D. D. Do D. Nicholson University of Queensland Suranaree University of Technology Wuhan University of Technology Thailand National Metal and Materials Technology Center Mahidol University Chemical Engineering Chemistry Engineering © 2018 Grand Canonical Monte Carlo simulation of methanol adsorption on a graphite model with two hydroxyl groups grafted on the surface has been carried out to investigate the effects of temperature in the range of 278-360 K. The spacing between the OH groups was chosen so that two hydrogen bonds could be formed with the first methanol molecule. In the Henry law region, the isosteric heat at zero loading is greater than the condensation heat. When the loading is increased, the isosteric heat at low temperatures decreases slightly and exhibits a shoulder, which is associated with the formation of a cluster of methanol molecules around one OH group. On further increase in loading, the adsorbate-adsorbate interactions decrease because methanol begins to adsorb on the other OH group, resulting in a sharp decrease in the isosteric heat to a minimum, at which point both OH groups are covered with methanol molecules. At higher temperatures the isosteric heat at zero loading decreases but remains higher than the condensation heat. The shoulder heat is progressively diminished with temperature because methanol molecules are distributed over the two OH groups, due to the entropic effects. Interestingly, the minimum heat still occurs when the functional groups are covered and is even more pronounced at high temperatures. 2019-08-23T10:44:53Z 2019-08-23T10:44:53Z 2018-09-21 Article Chemical Engineering Science. Vol.187, (2018), 16-26 10.1016/j.ces.2018.04.063 00092509 2-s2.0-85046799776 https://repository.li.mahidol.ac.th/handle/123456789/45417 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85046799776&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Chemical Engineering
Chemistry
Engineering
spellingShingle Chemical Engineering
Chemistry
Engineering
Waralee Dilokekunakul
Nikom Klomkliang
Somsak Supasitmongkol
Somboon Chaemchuen
D. D. Do
D. Nicholson
Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
description © 2018 Grand Canonical Monte Carlo simulation of methanol adsorption on a graphite model with two hydroxyl groups grafted on the surface has been carried out to investigate the effects of temperature in the range of 278-360 K. The spacing between the OH groups was chosen so that two hydrogen bonds could be formed with the first methanol molecule. In the Henry law region, the isosteric heat at zero loading is greater than the condensation heat. When the loading is increased, the isosteric heat at low temperatures decreases slightly and exhibits a shoulder, which is associated with the formation of a cluster of methanol molecules around one OH group. On further increase in loading, the adsorbate-adsorbate interactions decrease because methanol begins to adsorb on the other OH group, resulting in a sharp decrease in the isosteric heat to a minimum, at which point both OH groups are covered with methanol molecules. At higher temperatures the isosteric heat at zero loading decreases but remains higher than the condensation heat. The shoulder heat is progressively diminished with temperature because methanol molecules are distributed over the two OH groups, due to the entropic effects. Interestingly, the minimum heat still occurs when the functional groups are covered and is even more pronounced at high temperatures.
author2 University of Queensland
author_facet University of Queensland
Waralee Dilokekunakul
Nikom Klomkliang
Somsak Supasitmongkol
Somboon Chaemchuen
D. D. Do
D. Nicholson
format Article
author Waralee Dilokekunakul
Nikom Klomkliang
Somsak Supasitmongkol
Somboon Chaemchuen
D. D. Do
D. Nicholson
author_sort Waralee Dilokekunakul
title Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
title_short Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
title_full Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
title_fullStr Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
title_full_unstemmed Effects of temperature on methanol adsorption on functionalized graphite: Saturation of functional groups
title_sort effects of temperature on methanol adsorption on functionalized graphite: saturation of functional groups
publishDate 2019
url https://repository.li.mahidol.ac.th/handle/123456789/45417
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