Three qubits in less than three baths: Beyond two-body system-bath interactions in quantum refrigerators
arXiv:2012.08399 · doi:10.1103/PhysRevA.104.042208
Abstract
We show that quantum absorption refrigerators, which have traditionally been studied as of three qubits, each of which is connected to a thermal reservoir, can also be constructed by using three qubits and two thermal baths, where two of the qubits, including the qubit to be locally cooled, are connected to a common bath. With a careful choice of the system, bath, and qubit-bath interaction parameters within the Born-Markov and rotating-wave approximations, one of the qubits attached to the common bath achieves a cooling in the steady state. We observe that the proposed refrigerator may also operate in a parameter regime where no or negligible steady-state cooling is achieved, but there is considerable transient cooling. The steady-state temperature can be lowered significantly by an increase in the strength of the few-body interaction terms existing due to the use of the common bath in the refrigerator setup. The proposed refrigerator built with three qubits and two baths is shown to provide steady-state cooling for both Markovian qubit-bath interactions between the qubits and canonical bosonic thermal reservoirs, and a simpler reset model for the qubit-bath interactions.
15 pages, 8 figures
References in corpus (13)
- Description of quantum coherence in thermodynamic processes requires constraints beyond free energy
- Single ion heat engine with maximum efficiency at maximum power
- Modeling heat transport through completely positive maps
- Nonequilibrium fluctuations in quantum heat engines: Theory, example, and possible solid state experiments
- Performance bound for quantum absorption refrigerators
- Otto refrigerator based on a superconducting qubit: classical and quantum performance
- Autonomous Quantum Refrigerator in a Circuit-QED Architecture Based on a Josephson Junction
- Thermodynamic cost of creating correlations
- A quantum heat engine with coupled superconducting resonators
- Quantum thermodynamically consistent local master equations
- Three-qubit refrigerator with two-body interactions
- Superconducting quantum refrigerator: Breaking and rejoining Cooper pairs with magnetic field cycles
- Enabling the self-contained refrigerator to work beyond its limits by filtering the reservoir
Cited by in corpus (6)
- Quantum thermal machines and batteries
- Designing Robust Quantum Refrigerators in Disordered Spin Models
- Designing refrigerators in higher dimensions using quantum spin models
- Transient effects in quantum refrigerators with finite environments
- Enhancing the Performances of Autonomous Quantum Refrigerators via Two-Photon Transitions
- Quantum refrigerator embedded in spin-star environments: Scalings of temperature and refrigeration time