Scaling for Interfacial Tensions near Critical Endpoints
Abstract
Parametric scaling representations are obtained and studied for the asymptotic behavior of interfacial tensions in the \textit{full} neighborhood of a fluid (or Ising-type) critical endpoint, i.e., as a function \textit{both} of temperature \textit{and} of density/order parameter \textit{or} chemical potential/ordering field. Accurate \textit{nonclassical critical exponents} and reliable estimates for the \textit{universal amplitude ratios} are included naturally on the basis of the ``extended de Gennes-Fisher'' local-functional theory. Serious defects in previous scaling treatments are rectified and complete wetting behavior is represented; however, quantitatively small, but unphysical residual nonanalyticities on the wetting side of the critical isotherm are smoothed out ``manually.'' Comparisons with the limited available observations are presented elsewhere but the theory invites new, searching experiments and simulations, e.g., for the vapor-liquid interfacial tension on the two sides of the critical endpoint isotherm for which an amplitude ratio is predicted.
Cite
@article{arxiv.cond-mat/0410673,
title = {Scaling for Interfacial Tensions near Critical Endpoints},
author = {Shun-yong Zinn and Michael E. Fisher},
journal= {arXiv preprint arXiv:cond-mat/0410673},
year = {2009}
}
Comments
42 pages, 6 figures, to appear in Physical Review E