Extending the laws of thermodynamics for arbitrary autonomous quantum systems
arXiv:2207.04850 · doi:10.1103/PRXQuantum.4.020309
Abstract
Originally formulated for macroscopic machines, the laws of thermodynamics were recently shown to hold for quantum systems coupled to ideal sources of work (external classical fields) and heat (systems at equilibrium). Ongoing efforts have been focusing on extending the validity of thermodynamic laws to more realistic, non-ideal energy sources. Here, we go beyond these extensions and show that energy exchanges between arbitrary quantum systems are structured by the laws of thermodynamics. We first generalize the second law and identify the associated work and heat exchanges. After recovering known results from ideal work and heat sources, we analyze some consequences of hybrid work and heat sources. We illustrate our general laws with microscopic machines realizing thermodynamic tasks in which the roles of heat and work sources are simultaneously played by elementary quantum systems. Our results open perspectives to understand and optimize the energetic performances of realistic quantum devices, at any scale.
9 pages, 3 figures. Accepted in PRX Quantum (2023)
References in corpus (9)
- Irreversible entropy production, from quantum to classical
- Performance bound for quantum absorption refrigerators
- The Wigner Entropy Production Rate
- Local effective dynamics of quantum systems: A generalized approach to work and heat
- Exact open quantum system dynamics using the Hierarchy of Pure States (HOPS)
- Clausius Inequality for Finite Baths Reveals Universal Efficiency Improvements
- Autonomous implementation of thermodynamic cycles at the nanoscale
- Thermalization induced by quantum scattering
- Post-selection and quantum energetics
Cited by in corpus (17)
- Roadmap on Quantum Thermodynamics
- Cyclic quantum engines enhanced by strong bath coupling
- Stochastic thermodynamics of a quantum dot coupled to a finite-size reservoir
- Thermodynamic Roles of Quantum Environments: From Heat Baths to Work Reservoirs
- Dynamics of a strongly coupled quantum heat engine -- computing bath observables from the hierarchy of pure states
- A thermodynamically consistent approach to the energy costs of quantum measurements
- Work, Heat and Internal Energy in Open Quantum Systems: A Comparison of Four Approaches from the Autonomous System Framework
- Local and global approaches to the thermodynamics of pure decoherence processes in open quantum systems
- A Thermodynamic Framework for Coherently Driven Systems
- Simultaneous symmetry breaking in spontaneous Floquet states: temporal Floquet-Nambu-Goldstone modes, Floquet thermodynamics, and the time operator
- Entropy Production from Maximum Entropy Principle: a Unifying Approach
- Energy exchange and fluctuations between a dissipative qubit and a monitor under continuous measurement and feedback
- Thermodynamics of autonomous optical Bloch equations
- Local energy assignment for two interacting quantum thermal reservoirs
- Typical Positivity of Nonequilibrium Entropy Production for Pure States
- The Jaynes Cummings model as an autonomous Maxwell demon
- Entropy production versus memory effects in two-level open quantum systems