Introduction to Quantum Thermodynamics: History and Prospects
arXiv:1801.08314
Abstract
Quantum Thermodynamics is a continuous dialogue between two independent theories: Thermodynamics and Quantum Mechanics. Whenever the two theories addressed the same phenomena new insight has emerged. We follow the dialogue from equilibrium Quantum Thermodynamics and the notion of entropy and entropy inequalities which are the base of the II-law. Dynamical considerations lead to non-equilibrium thermodynamics of quantum Open Systems. The central part played by completely positive maps is discussed leading to the Gorini-Kossakowski-Lindblad-Sudarshan GKLS equation. We address the connection to thermodynamics through the system-bath weak-coupling-limit WCL leading to dynamical versions of the I-law. The dialogue has developed through the analysis of quantum engines and refrigerators. Reciprocating and continuous engines are discussed. The autonomous quantum absorption refrigerator is employed to illustrate the III-law. Finally, we describe some open questions and perspectives.
Cited by in corpus (12)
- Charger-mediated energy transfer for quantum batteries: an open system approach
- Charger-mediated energy transfer in exactly-solvable models for quantum batteries
- Coherence and decoherence in quantum absorption refrigerators
- A universal approach to quantum thermodynamics in the strong coupling regime
- Fast adiabatic evolution by oscillating initial Hamiltonians
- Exact solution of time-dependent Lindblad equations with closed algebras
- Critical-point behavior of a measurement-based quantum heat engine
- Universal approach to quantum thermodynamics of strongly coupled systems under nonequilibrium conditions and external driving
- Assisted work distillation
- Entropy and information flow in quantum systems strongly coupled to baths
- Quantum corrections to the entropy and its application in the study of quantum Carnot engines
- Role of topology on the work distribution function of a quenched Haldane model of graphene