Renormalization group study of the melting of a two-dimensional system of collapsing hard disks


Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription Access

Abstract

We consider the melting of a two-dimensional system of collapsing hard disks (a system with a hard-disk potential to which a repulsive step is added) for different values of the repulsive-step width. We calculate the system phase diagram by the method of the density functional in crystallization theory using equations of the Berezinskii–Kosterlitz–Thouless–Halperin–Nelson–Young theory to determine the lines of stability with respect to the dissociation of dislocation pairs, which corresponds to the continuous transition from the solid to the hexatic phase. We show that the crystal phase can melt via a continuous transition at low densities (the transition to the hexatic phase) with a subsequent transition from the hexatic phase to the isotropic liquid and via a first-order transition. Using the solution of renormalization group equations with the presence of singular defects (dislocations) in the system taken into account, we consider the influence of the renormalization of the elastic moduli on the form of the phase diagram.

About the authors

V. N. Ryzhov

Vereshchagin Institute for High Pressure Physics, RAS

Author for correspondence.
Email: ryzhov@hppi.troitsk.ru
Russian Federation, Moscow

E. E. Tareyeva

Vereshchagin Institute for High Pressure Physics, RAS

Author for correspondence.
Email: etare@ms2.inr.ac.ru
Russian Federation, Moscow

Yu. D. Fomin

Vereshchagin Institute for High Pressure Physics, RAS

Email: etare@ms2.inr.ac.ru
Russian Federation, Moscow

E. N. Tsiok

Vereshchagin Institute for High Pressure Physics, RAS

Email: etare@ms2.inr.ac.ru
Russian Federation, Moscow

E. S. Chumakov

Vereshchagin Institute for High Pressure Physics, RAS

Email: etare@ms2.inr.ac.ru
Russian Federation, Moscow

Supplementary files

Supplementary Files
Action
1. JATS XML

Copyright (c) 2017 Pleiades Publishing, Ltd.