Quantum engineering of a synthetic thermal bath for bosonic atoms in a one-dimensional optical lattice via Markovian feedback control
arXiv:2203.15670 · doi:10.21468/SciPostPhys.13.3.059
Abstract
We propose and investigate a scheme for engineering a synthetic thermal bath for a bosonic quantum gas in a one-dimensional optical lattice based on Markovian feedback control. The performance of our scheme is quantified by the fidelity between the steady state of the system and the effective thermal state. For double-well and triple-well systems with non-interacting particles, the steady state is found to be an exact thermal state, which is attributed to the fact that the transfer rates between all pairs of coupled eigenstates satisfy detailed balance condition. The scenario changes when there are more lattice sites, where the detailed balance condition does not hold any more, but remains an accurate approximation. Remarkably, our scheme performs very well at low and high temperature regimes, with the fidelity close to one. The performance at the intermediate temperature regime (where a crossover into a Bose condensed regime occurs) is slightly worse, and the fidelity shows a gentle decrease with increasing system size. We also discuss the interacting cases. In contrast to the non-interacting cases, the scheme is found to perform better at a higher temperature. Another difference is that the minimal temperature that can be engineered is nonzero and increases with the interaction strength.
References in corpus (25)
- Quantum fluids of light
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- An Open-System Quantum Simulator with Trapped Ions
- Cold atoms in cavity-generated dynamical optical potentials
- Exciton-polariton condensates
- Bose-Einstein condensation of photons in an optical microcavity
- Cavity QED with a Bose-Einstein condensate
- Dynamical Phase Transitions and Instabilities in Open Atomic Many-Body Systems
- Non-equilibrium quantum condensation in an incoherently pumped dissipative system
- Signatures of Many-Body Localization in a Controlled Open Quantum System
- Multiterminal Conductance of a Floquet Topological Insulator
- How a small quantum bath can thermalize long localized chains
- Non-equilibrium dynamics of bosonic atoms in optical lattices: Decoherence of many-body states due to spontaneous emission
- Signatures of a dissipative phase transition in photon correlation measurements
- Dynamical quantum phase transitions in the dissipative Lipkin-Meshkov-Glick model and proposed realization in optical cavity QED
- Observation of the photon-blockade breakdown phase transition
- Stabilising entanglement by quantum jump-based feedback
- Controlling entanglement by direct quantum feedback
- Nonequilibrium Steady State of Photoexcited Correlated Electrons in the Presence of Dissipation
- Measuring the dynamic structure factor of a quantum gas undergoing a structural phase transition
- Possible experimental manifestations of the many-body localization
- Multipartite Entangled Spatial Modes of Ultracold Atoms Generated and Controlled by Quantum Measurement
- Dynamical phases and quantum correlations in an emitter-waveguide system with feedback
- Bath-induced decay of Stark many-body localization
- Cooling and state preparation in an optical lattice via Markovian feedback control