Evaluation of the configurational entropy of a model liquid from computer simulations
- 6 July 2000
- journal article
- Published by IOP Publishing in Journal of Physics: Condensed Matter
- Vol. 12 (29) , 6515-6523
- https://doi.org/10.1088/0953-8984/12/29/323
Abstract
Computer simulations have been employed in recent years to evaluate the configurational entropy changes in model glass-forming liquids. We consider two methods, both of which involve the calculation of the `intra-basin' entropy as a means for obtaining the configurational entropy. The first method involves the evaluation of the intra-basin entropy from the vibrational frequencies of inherent structures, by making a harmonic approximation to the local potential energy topography. The second method employs simulations that confine the liquid within a localized region of configuration space by the imposition of constraints; apart from the choice of the constraints, no further assumptions are made. We compare the configurational entropies estimated for a model liquid (binary mixture of particles interacting via the Lennard-Jones potential) for a range of temperatures, at fixed density.Keywords
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This publication has 27 references indexed in Scilit:
- Inherent Structure Entropy of Supercooled LiquidsPhysical Review Letters, 1999
- Low temperature absorption, fluorescence, and hole-burning spectroscopy of photosystem II reaction center complex containing 1 and 2 carotenoidesJournal of Molecular Structure, 1999
- The distribution of tetravalent network glassesMolecular Physics, 1996
- A Topographic View of Supercooled Liquids and Glass FormationScience, 1995
- The entropy of a network crystal, fluid and glassMolecular Physics, 1994
- The entropy of a glassMolecular Physics, 1993
- Packing Structures and Transitions in Liquids and SolidsScience, 1984
- Hidden structure in liquidsPhysical Review A, 1982
- On the Temperature Dependence of Cooperative Relaxation Properties in Glass-Forming LiquidsThe Journal of Chemical Physics, 1965
- Nature of the Glass Transition and the Glassy StateThe Journal of Chemical Physics, 1958