Characterization of pore size distributions of mesoporous materials from adsorption isotherms

Sonwane, C. G. ; Bhatia, S. K. (2000) Characterization of pore size distributions of mesoporous materials from adsorption isotherms Journal of Physical Chemistry B, 104 (39). pp. 9099-9110. ISSN 1089-5647

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Official URL: http://pubs.acs.org/doi/abs/10.1021/jp000907j

Related URL: http://dx.doi.org/10.1021/jp000907j

Abstract

In this article, a new hybrid model for estimating the pore size distribution of micro- and mesoporous materials is developed, and tested with the adsorption data of nitrogen, oxygen, and argon on ordered mesoporous materials reported in the literature. For the micropore region, the model uses the Dubinin-Rudushkevich (DR) isotherm with the Chen-Yang modification. A recent isotherm model of the authors for nonporous materials, which uses a continuum-mechanical model for the multilayer region and the Unilan model for the submonolayer region, has been extended for adsorption in mesopores. The experimental data is inverted using regularization to obtain the pore size distribution. The present model was found to be successful in predicting the pore size distribution of pure as well as binary physical mixtures of MCM-41 synthesized with different templates, with results in agreement with those from the XRD method and nonlocal density functional theory. It was found that various other recent methods, as well as the classical Broekhoff and de Boer method, underpredict the pore diameter of MCM-41. The present model has been successfully applied to MCM-48, SBA's, CMK, KIT, HMS, FSM, MTS, mesoporous fly ash, and a large number of other regular mesoporous materials.

Item Type:Article
Source:Copyright of this article belongs to American Chemical Society.
ID Code:2683
Deposited On:08 Oct 2010 09:00
Last Modified:17 May 2011 07:07

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