Unravelling the non-classicality role in Gaussian heat engines
arXiv:2012.02049 · doi:10.1038/s41598-022-13811-z
Abstract
At the heart of quantum thermodynamics lies a fundamental question about what is genuine "quantum" in quantum heat engines and how to seek this quantumness, so that thermodynamical tasks could be performed more efficiently compared with classical protocols. Here, using the concept of -representability, we define a function called classicality, which quantifies the degree of non-classicality of bosonic modes. This function allows us to explore the role of non-classicality in quantum heat engines and design optimal protocols for work extraction. For two specific cycles, a quantum Otto and a generalised one, we show that non-classicality is a fundamental resource for performing thermodynamic tasks more efficiently.
Published version; 11 pages, 7 figures
References in corpus (9)
- Quantum Thermodynamic Cycles and quantum heat engines
- Description of quantum coherence in thermodynamic processes requires constraints beyond free energy
- Quantum coherence, time-translation symmetry and thermodynamics
- Quantum thermodynamic devices: from theoretical proposals to experimental reality
- Comparison of far-from-equilibrium work relations
- Quantum thermal machines and batteries
- Passivity and practical work extraction using Gaussian operations
- Performance bounds of non-adiabatic quantum harmonic Otto engine and refrigerator under a squeezed thermal reservoir
- The geometry of passivity for quantum systems and a novel elementary derivation of the Gibbs state
Cited by in corpus (8)
- Exploring quantum thermodynamics with NMR
- Correlation-boosted quantum engine: A proof-of-principle demonstration
- Improving parameters estimation in Gaussian channels using quantum coherence
- Quantum refrigerator driven by nonclassical light
- Entanglement in phase-space distribution for an anisotropic harmonic oscillator in noncommutative space
- Quasi-probability distribution of work in a measurement-based quantum Otto engine
- Non-Classicality and Non-adiabaticity in a Single Trapped Ion
- Universal Statistics of Charges Exchanges in Non-Abelian Quantum Transport