Ballistic-hydrodynamic phase transition in flow of two-dimensional electrons
Abstract
Phase transitions are characterized by a sharp change in the type of dynamics of microparticles, and their description usually requires quantum mechanics. Recently, a peculiar type of conductors was discovered in which two-dimensional (2D) electrons form a viscous fluid. In this work we reveal that such electron fluid in high-quality samples can be formed from ballistic electrons via a phase transition. For this purpose, we theoretically study the evolution of a ballistic flow of 2D weakly interacting electrons with an increase of magnetic field and trace an emergence of a fluid fraction at a certain critical field. Such restructuring of the flow manifests itself in a kink in magnetic-field dependencies of the longitudinal and the Hall resistances. It is remarkable that the studied phase transition has a classical-mechanical origin and is determined by both the ballistic size effects and the electron-electron scattering. Our analysis shows that this effect was apparently observed in the recent transport experiments on 2D electrons in graphene and high-mobility GaAs quantum wells.
Keywords
Cite
@article{arxiv.2010.01642,
title = {Ballistic-hydrodynamic phase transition in flow of two-dimensional electrons},
author = {A. N. Afanasiev and P. S. Alekseev and A. A. Greshnov and M. A. Semina},
journal= {arXiv preprint arXiv:2010.01642},
year = {2022}
}
Comments
5 pages, 3 figures in the main text; 19 pages, 12 figures in the supplementary material