Bose–Einstein condensation of spin wave quanta at room temperature

Dzyapko O, Demidov VE, Melkov GA, Demokritov SO

Research article (journal) | Peer reviewed

Abstract

Spin waves are delocalized excitations of magnetic media that mainly determine their magnetic dynamics and thermodynamics at temperatures far below the critical one. The quantum-mechanical counterparts of spin waves are magnons, which can be considered as a gas of weakly interacting bosonic quasi-particles. Here, we discuss the roomtemperature kinetics and thermodynamics of the magnon gas in yttrium iron garnet films driven by parametric microwave pumping. We show that for high enough pumping powers, the thermalization of the driven gas results in a quasi-equilibrium state described by Bose–Einstein statistics with a non-zero chemical potential. Further increases of the pumping power cause a Bose–Einstein condensation documented by an observation of the magnon accumulation at the lowest energy level. Using the sensitivity of the Brillouin light scattering spectroscopy to the degree of coherence of the scattering magnons, we confirm the spontaneous emergence of coherence of the magnons accumulated at the bottom of the spectrum, occurring if their density exceeds a critical value.

Details about the publication

Volume369
Issue1951
Page range3575-3587
StatusPublished
Release year2011
Language in which the publication is writtenEnglish
DOI10.1098/rsta.2011.0128
Keywordsspin waves; magnons; Bose–Einstein condensation

Authors from the University of Münster

Demidov, Vladislav
Professur für Angewandte Physik (Prof. Demokritov)
Demokritov, Sergej
Professur für Angewandte Physik (Prof. Demokritov)
Dzyapko, Oleksandr
Professur für Angewandte Physik (Prof. Demokritov)