English

Thermo-optical interactions in a dye-microcavity photon Bose-Einstein condensate

Quantum Physics 2017-12-06 v1 Quantum Gases Computational Physics

Abstract

Superfluidity and Bose-Einstein condensation are usually considered as two closely related phenomena. Indeed, in most macroscopic quantum systems, like liquid helium, ultracold atomic Bose gases, and exciton-polaritons, condensation and superfluidity occur in parallel. In photon Bose-Einstein condensates realized in the dye microcavity system, thermalization does not occur by direct interaction of the condensate particles as in the above described systems, i.e. photon-photon interactions, but by absorption and re-emission processes on the dye molecules, which act as a heat reservoir. Currently, there is no experimental evidence for superfluidity in the dye microcavity system, though effective photon interactions have been observed from thermo-optic effects in the dye medium. In this work, we theoretically investigate the implications of effective thermo-optic photon interactions, a temporally delayed and spatially non-local effect, on the photon condensate, and derive the resulting Bogoliubov excitation spectrum. The calculations suggest a linear photon dispersion at low momenta, fulfilling the Landau's criterion of superfluidity . We envision that the temporally delayed and long-range nature of the thermo-optic photon interaction offer perspectives for novel quantum fluid phenomena.

Keywords

Cite

@article{arxiv.1710.01706,
  title  = {Thermo-optical interactions in a dye-microcavity photon Bose-Einstein condensate},
  author = {Hadiseh Alaeian and Mira Schedensack and Clara Bartels and Daniel Peterseim and Martin Weitz},
  journal= {arXiv preprint arXiv:1710.01706},
  year   = {2017}
}

Comments

21 pages, 5 figures

R2 v1 2026-06-22T22:03:48.734Z