Signatures of self-trapping in the driven-dissipative Bose-Hubbard dimer

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Abstract

We investigate signatures of a self-trapping transition in the driven-dissipative Bose Hubbard dimer, in presence of incoherent pump and single-particle losses. For fully symmetric couplings the stationary state density matrix is independent of any Hamiltonian parameter, and cannot therefore capture the competition between hopping-induced delocalization and the interaction-dominated self-trapping regime. We focus instead on the exact quantum dynamics of the particle imbalance after the system is prepared in a variety of initial states, and on the frequency-resolved spectral properties of the steady state, as encoded in the single-particle Green's functions. We find clear signatures of a localization-delocalization crossover as a function of hopping to interaction ratio. We further show that a finite a pump-loss asymmetry restores a delocalization crossover in the steady-state imbalance and leads to a finite intra-dimer dissipation.

Original languageEnglish
Article number063056
JournalNew Journal of Physics
Volume23
Issue number6
DOIs
Publication statusPublished - 1 Jun 2021
Externally publishedYes

Keywords

  • Bose Hubbard dimmer
  • Lindblad master equation
  • coupled BEC
  • dissipative phase transitions
  • open quantum systems

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