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  3. Vortex formation and dynamics in two-dimensional driven-dissipative condensates

Vortex formation and dynamics in two-dimensional driven-dissipative condensates

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DOI
10.7892/boris.95491
Publisher DOI
10.1103/PhysRevA.94.063617
Abstract
We investigate the real-time evolution of lattice bosons in two spatial dimensions whose dynamics is governed by a Markovian quantum master equation. We employ the Wigner-Weyl phase space quantization and derive the functional integral for open quantum many-body systems that determines the time evolution of the Wigner function. Using the truncated Wigner approximation, in which quantum fluctuations are only taken into account in the initial state whereas the dynamics is governed by classical evolution equations, we study the buildup of long-range correlations due to the action of non-Hermitean quantum jump operators that constitute a mechanism for dissipative cooling. Starting from an initially disordered state corresponding to a vortex condensate, the dissipative process results in the annihilation of vortex-antivortex pairs and the establishment of quasi-long-range order at late times. We observe that a finite vortex density survives the cooling process, which disagrees with the analytically constructed vortex-free Bose-Einstein condensate at asymptotic times. This indicates that quantum fluctuations beyond the truncated Wigner approximation need to be included to fully capture the physics of dissipative Bose-Einstein condensation.
Date Issued
2016-12-16
Publication Type
Article
Subject(s)
500 Science > 530 Physics
Language(s)
en
Author(s)
Hebenstreit, Florian  
Institut für theoretische Physik der Universität Bern (ITP)  
Additional Credits
Institut für theoretische Physik der Universität Bern (ITP)  
Journal
Physical review. A - atomic, molecular, and optical physics
Publisher
American Physical Society
ISSN
1050-2947
Access(Rights)
open.access
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