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Density Functional Theory for Studies of Multiple States of Inhomogeneous Fluids at Solid Surfaces and in Pores

Published online by Cambridge University Press:  10 February 2011

A. V. Neimark
Affiliation:
TRI/Princeton, 601 Prospect Av., Princeton, NJ, 08542–0625, aneimark@triprinceton.org Chemical Engineering/Yale University, New Haven, CT, 06520–8286
P. I. Ravikovitch
Affiliation:
Chemical Engineering/Yale University, New Haven, CT, 06520–8286
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Abstract

Two new versions of the density functional theory (DFT), which correspond to the canonical ensemble and the Gibbs ensemble respectively, are applied to study multiple equilibrium states and associated hysteresis on examples of capillary condensation of argon in nanopores of MCM-41 mesoporous molecular sieves and Kr adsorption on carbon. The canonical ensemble DFT (CEDFT) allows us to trace not only the stable and the metastable states along the hysteresis loop, but also the unstable states inside the hysteresis loop. The Gibbs ensemble DFT (GEDFT) allows us to determine precisely the points of equilibrium phase transitions in confined fluids.

Type
Research Article
Copyright
Copyright © Materials Research Society 1998

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References

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