Thermally driven quantum refrigerator autonomously resets superconducting qubit
arXiv:2305.16710 · doi:10.1038/s41567-024-02708-5
Abstract
Although classical thermal machines power industries and modern living, quantum thermal engines have yet to prove their utility. Here, we demonstrate a useful quantum absorption refrigerator formed from superconducting circuits. We use it to cool a transmon qubit to a temperature lower than that achievable with any one available bath, thereby resetting the qubit to an initial state suitable for quantum computing. The process is driven by a thermal gradient and is autonomous, requiring no external feedback. The refrigerator exploits an engineered three-body interaction between the target qubit and two auxiliary qudits. Each auxiliary qudit is coupled to a physical heat bath, realized with a microwave waveguide populated with synthesized quasithermal radiation. If the target qubit is initially fully excited, its effective temperature reaches a steady-state level of approximately 22~mK, lower than what can be achieved by existing state-of-the-art reset protocols. Our results demonstrate that superconducting circuits with propagating thermal fields can be used to experimentally explore quantum thermodynamics and apply it to quantum information-processing tasks.
9 pages (4 figures) + supplementary information (9 pages)
References in corpus (12)
- Charge insensitive qubit design derived from the Cooper pair box
- Demonstrating a Driven Reset Protocol of a Superconducting Qubit
- Quantum technologies need a Quantum Energy Initiative
- Thermal and Residual Excited-State Population in a 3D Transmon Qubit
- Autonomous Quantum Refrigerator in a Circuit-QED Architecture Based on a Josephson Junction
- Photon Statistics of Propagating Thermal Microwaves
- From quantum speed limits to energy-efficient quantum gates
- Quantum and classical dynamics of a three-mode absorption refrigerator
- Simultaneous excitation of two noninteracting atoms with time-frequency correlated photon pairs in a superconducting circuit
- Low-pass filter with ultra-wide stopband for quantum computing applications
- Key Issues Review: Useful autonomous quantum machines
- Optimal quantum parametric feedback cooling
Cited by in corpus (35)
- Roadmap on Quantum Thermodynamics
- Precision is not limited by the second law of thermodynamics
- Accelerating Quantum Relaxation via Temporary Reset: A Mpemba-Inspired Approach
- Asymmetries of thermal processes in open quantum systems
- Quantum-Computer-Based Verification of Quantum Thermodynamic Uncertainty Relation
- Quantum thermodynamic advantage in work extraction from steerable quantum correlations
- A thermal-noise-resilient microwave quantum network traversing 4 K
- Quantum refrigeration powered by noise in a superconducting circuit
- Artificially intelligent Maxwell's demon for optimal control of open quantum systems
- Deterministic generation of frequency-bin-encoded microwave photons
- Autonomous Quantum Processing Unit: An Autonomous Thermal Computing Machine & its Physical Limitations
- Fast, Accurate, and Local Temperature Control Using Qubits
- Engineering a multi-level bath for transmons with three-wave mixing and parametric drives
- Deterministic Equations for Feedback Control of Open Quantum Systems III: Full counting statistics for jump-based feedback
- Numerical implementation of the partial secular approximation and unified master equation in structured open quantum systems
- Enhancing the Performances of Autonomous Quantum Refrigerators via Two-Photon Transitions
- Effects of correlated hopping on thermoelectric response of a quantum dot strongly coupled to ferromagnetic leads
- Ergotropic advantage in a measurement-fueled quantum heat engine
- Unlocking inaccessible performance of the quantum refrigerator with catalysts
- Framework for fluctuating times and counting observables in stochastic excursions
- Cooling a Qubit using n Others
- Counting observables in stochastic excursions
- Heat operator approach to quantum stochastic thermodynamics in the strong-coupling regime
- Thermodynamic inference in molecular motors: a Martingale approach
- Photonic heat amplifiers based on a disordered semiconductor
- Reducing thermal noises by quantum refrigerators
- Photonic Negative Differential Thermal Conductance Enabled by NIS Junctions
- Heat, work, and fluctuations in a driven quantum resonator
- A Temperature Change can Solve the Deutsch-Jozsa Problem : An Exploration of Thermodynamic Query Complexity
- Quantum thermal rectification via state-dependent two-photon dissipation
- Quantum Heat Transformers
- Behavior of quantum coherence in the ultrastrong and deep strong coupling regimes of light-matter system
- Time-frequency-correlated Native CCZ Gate in Superconducting Circuits
- Sub-Bath Cooling in Bosonic Systems: Gaussian Constraints and Non-Gaussian Enhancements
- Direct temperature readout in nonequilibrium quantum thermometry