A photonic quantum engine driven by superradiance
arXiv:2406.15710 · doi:10.1038/s41566-022-01039-2
Abstract
Performance of nano- and micro-scale heat engines can be improved with a help from quantum mechanical phenomena. Recently, heat reservoirs with quantum coherence have been proposed to enhance engine performance beyond the Carnot limit even with a single reservoir. However, no physical realizations have been achieved so far. Here, we report the first proof-of-principle experimental demonstration of a photonic quantum engine driven by superradiance employing a single heat reservoir composed of atoms and photonic vacuum. Reservoir atoms prepared in a quantum coherent superposition state underwent superradiance while traversing the cavity. This led to about 40-fold increase of the effective engine temperature, resulting in a near-unity engine efficiency. Moreover, the observed engine output power grew quadratically with respect to the atomic injection rate. Our work can be utilized in quantum mechanical heat transfer as well as in boosting engine powers, opening a pathway to development of photomechanical devices that run on quantum coherence embedded in heat baths.
8 pages, 3 figures, 1 extended data figure
References in corpus (21)
- Quantum Thermodynamic Cycles and quantum heat engines
- A nano heat engine beyond the Carnot limit
- Experimental demonstration of quantum effects in the operation of microscopic heat engines
- Experimental characterization of a spin quantum heat engine
- Tunable photonic heat transport in a quantum heat valve
- Quantum Coherence and Ergotropy
- A spin heat engine coupled to a harmonic-oscillator flywheel
- An endoreversible quantum heat engine driven by atomic collisions
- Work extremum principle: Structure and function of quantum heat engines
- On the operation of machines powered by quantum non-thermal baths
- Superradiant Quantum Heat Engine
- Multiatom Quantum Coherences in Micromasers as Fuel for Thermal and Nonthermal Machines
- Single atom energy-conversion device with a quantum load
- Universal constraint for efficiency and power of a low-dissipation heat engine
- Efficiency at maximum power output of quantum heat engines under finite-time operation
- Coherent single-atom superradiance
- Power enhancement of heat engines via correlated thermalization in multilevel systems
- Realization of superabsorption by time reversal of superradiance
- Three-dimensional imaging of cavity vacuum with single atoms localized by a nanohole array
- Maximum Power Output of Quantum Heat Engine with Energy Bath
- Tailoring the thermalization time of a cavity-field using distinct atomic reservoirs
Cited by in corpus (17)
- Quantum Engines and Refrigerators
- Making statistics work: a quantum engine in the BEC-BCS crossover
- Cavity Sub- and Superradiance Enhanced Ramsey Spectroscopy
- Thermodynamics of Permutation-Invariant Quantum Many-Body Systems: A Group-Theoretical Framework
- Triggered Superradiance and Inversion Storage in a Hybrid Quantum System
- Rydberg ion flywheel for quantum work storage
- Dicke superradiant enhancement of the heat current in circuit QED
- Quantum Carnot thermal machines re-examined: Definition of efficiency and the effects of strong coupling
- Trapped-atom Otto engine with light-induced dipole-dipole interactions
- A photonic engine fueled by quantum-correlated atoms
- The role of polaron dressing in superradiant emission dynamics
- Efficient heat-energy conversion from a non-thermal Tomonaga-Luttinger liquid
- Enhancing Quantum Otto Engine Performance in Generalized External Potential on Bose-Einstein Condensation Regime
- Stochastic Thermodynamics at the Quantum-Classical Boundary: A Self-Consistent Framework Based on Adiabatic-Response Theory
- Dense dipole-dipole-coupled two-level systems in a thermal bath
- Symmetry induced enhancement in finite-time thermodynamic trade-off relations
- Quantum evolution of mixed states and performance of quantum heat engines