On the hysteresis of argon adsorption in a uniform closed end slit pore

We present a molecular simulation study of adsorption and desorption in slit mesopores of uniform width with one end closed and explore the effects of pore dimensions (width and length), temperature and surface affinity on the hysteresis loop: its position, lower and upper closure points, area and s...

Full description

Bibliographic Details
Main Authors: Fan, Chunyan, Do, D., Nicholson, D.
Format: Journal Article
Published: Academic Press 2013
Online Access:http://hdl.handle.net/20.500.11937/55130
_version_ 1848759543011475456
author Fan, Chunyan
Do, D.
Nicholson, D.
author_facet Fan, Chunyan
Do, D.
Nicholson, D.
author_sort Fan, Chunyan
building Curtin Institutional Repository
collection Online Access
description We present a molecular simulation study of adsorption and desorption in slit mesopores of uniform width with one end closed and explore the effects of pore dimensions (width and length), temperature and surface affinity on the hysteresis loop: its position, lower and upper closure points, area and shape. Our results show that the metastability, brought about by structural change in the adsorbate, is the reason for the existence of hysteresis, and contrast with reports suggesting that reversibility invariably prevails for adsorption in closed end pores. The shape, area and position of the hysteresis loop are complex functions of pore width, length and temperature. We establish a parametric map of the boundary separating reversible and hysteretic regions. Our simulation results also show a number of interesting observations that have not been previously reported or generally recognised: (1) the fluid within the core of the pore behaves like a bulk liquid as the pore is progressively filled, via the movement of the meniscus from the closed end to the pore mouth, but as the pore fills, the fluid in the core becomes structured, (2) the shape of the meniscus changes as adsorption progresses but is constant during desorption because of the constant thickness of the adsorbed layer in the two-phase region, (3) the hysteresis loop is larger for a longer pore, (4) the area of the hysteresis loop increases with pore width up to a certain width, beyond which it decreases and finally disappears, (5) as temperature approaches the critical hysteresis temperature, the hysteresis loop area decreases, but it retains its Type H1 character. © 2013 Elsevier Inc.
first_indexed 2025-11-14T10:01:33Z
format Journal Article
id curtin-20.500.11937-55130
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T10:01:33Z
publishDate 2013
publisher Academic Press
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-551302017-09-13T16:11:12Z On the hysteresis of argon adsorption in a uniform closed end slit pore Fan, Chunyan Do, D. Nicholson, D. We present a molecular simulation study of adsorption and desorption in slit mesopores of uniform width with one end closed and explore the effects of pore dimensions (width and length), temperature and surface affinity on the hysteresis loop: its position, lower and upper closure points, area and shape. Our results show that the metastability, brought about by structural change in the adsorbate, is the reason for the existence of hysteresis, and contrast with reports suggesting that reversibility invariably prevails for adsorption in closed end pores. The shape, area and position of the hysteresis loop are complex functions of pore width, length and temperature. We establish a parametric map of the boundary separating reversible and hysteretic regions. Our simulation results also show a number of interesting observations that have not been previously reported or generally recognised: (1) the fluid within the core of the pore behaves like a bulk liquid as the pore is progressively filled, via the movement of the meniscus from the closed end to the pore mouth, but as the pore fills, the fluid in the core becomes structured, (2) the shape of the meniscus changes as adsorption progresses but is constant during desorption because of the constant thickness of the adsorbed layer in the two-phase region, (3) the hysteresis loop is larger for a longer pore, (4) the area of the hysteresis loop increases with pore width up to a certain width, beyond which it decreases and finally disappears, (5) as temperature approaches the critical hysteresis temperature, the hysteresis loop area decreases, but it retains its Type H1 character. © 2013 Elsevier Inc. 2013 Journal Article http://hdl.handle.net/20.500.11937/55130 10.1016/j.jcis.2013.04.052 Academic Press restricted
spellingShingle Fan, Chunyan
Do, D.
Nicholson, D.
On the hysteresis of argon adsorption in a uniform closed end slit pore
title On the hysteresis of argon adsorption in a uniform closed end slit pore
title_full On the hysteresis of argon adsorption in a uniform closed end slit pore
title_fullStr On the hysteresis of argon adsorption in a uniform closed end slit pore
title_full_unstemmed On the hysteresis of argon adsorption in a uniform closed end slit pore
title_short On the hysteresis of argon adsorption in a uniform closed end slit pore
title_sort on the hysteresis of argon adsorption in a uniform closed end slit pore
url http://hdl.handle.net/20.500.11937/55130