Defect-Driven Superfluid Crossover for Two-Dimensional Dipolar Excitons Trapped at Thermodynamic Equilibrium
Quantum Gases
2019-03-27 v1
Abstract
We study ultra-cold dipolar excitons confined in a 10m trap of a double GaAs quantum well. Based on the local density approximation, we unveil for the first time the equation of state of excitons at pure thermodynamic equilibrium. In this regime we show that, below a critical temperature of about Kelvin, a superfluid forms in the inner region of the trap at a local exciton density , encircled by a more dilute and normal component in the outer rim of the trap. Remarkably, this spatial arrangement correlates directly with the concentration of defects in the exciton density which exhibits a sudden decrease at the onset of superfluidity, thus pointing towards an underlying Berezinskii-Kosterlitz-Thouless mechanism.
Cite
@article{arxiv.1805.07982,
title = {Defect-Driven Superfluid Crossover for Two-Dimensional Dipolar Excitons Trapped at Thermodynamic Equilibrium},
author = {Suzanne Dang and Romain Anankine and Carmen Gomez and Aristide Lemaître and Markus Holzmann and François Dubin},
journal= {arXiv preprint arXiv:1805.07982},
year = {2019}
}
Comments
8 pages, 8 figures