Quantum phase transition of light in the dissipative Rabi-Hubbard
lattice: A dressed-master-equation perspective
- URL: http://arxiv.org/abs/2106.11867v2
- Date: Sun, 28 Nov 2021 09:47:40 GMT
- Title: Quantum phase transition of light in the dissipative Rabi-Hubbard
lattice: A dressed-master-equation perspective
- Authors: Tian Ye, Chen Wang, and Qing-Hu Chen
- Abstract summary: We investigate the quantum phase transition of light in the dissipative Rabi-Hubbard lattice.
The order parameter of photons in strong qubit-photon coupling regime is derived analytically both at zero and low temperatures.
- Score: 4.54325448000206
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: In this work, we investigate the quantum phase transition of light in the
dissipative Rabi-Hubbard lattice under the framework of the mean-field theory
and quantum dressed master equation. The order parameter of photons in strong
qubit-photon coupling regime is derived analytically both at zero and low
temperatures. Interestingly, we can locate the localization and delocalization
phase transition very well in a wide parameter region. {In particular for the
zero-temperature limit, the critical tunneling strength approaches zero
generally in the deep-strong qubit-photon coupling regime, regardless of the
quantum dissipation. This is contrary to the previous results with the finite
minimal critical tunneling strength based on the standard Lindblad master
equation. Moreover, a significant improvement of the critical tunneling is also
observed at finite temperature, compared with the counterpart under the
Lindblad description. We hope these results may deepen the understanding of the
phase transition of photons in the Rabi-Hubbard model.
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