Nonequilibrium Precondensation of Classical Waves in Two Dimensions Propagating through Atomic Vapors

Affiliation auteurs!!!! Error affiliation !!!!
TitreNonequilibrium Precondensation of Classical Waves in Two Dimensions Propagating through Atomic Vapors
Type de publicationJournal Article
Year of Publication2018
AuteursSantic N, Fusaro A, Salem S, Garnier J, Picozzi A, Kaiser R
JournalPHYSICAL REVIEW LETTERS
Volume120
Pagination055301
Date PublishedFEB 2
Type of ArticleArticle
ISSN0031-9007
Résumé

The nonlinear Schrodinger equation, used to describe the dynamics of quantum fluids, is known to be valid not only for massive particles but also for the propagation of light in a nonlinear medium, predicting condensation of classical waves. Here we report on the initial evolution of random waves with Gaussian statistics using atomic vapors as an efficient two dimensional nonlinear medium. Experimental and theoretical analysis of near field images reveal a phenomenon of nonequilibrium precondensation, characterized by a fast relaxation towards a precondensate fraction of up to 75%. Such precondensation is in contrast to complete thermalization to the Rayleigh-Jeans equilibrium distribution, requiring prohibitive long interaction lengths.

DOI10.1103/PhysRevLett.120.055301