Markovian master equations for quantum thermal machines: local vs global approach
arXiv:1707.09211 · doi:10.1088/1367-2630/aa964f
Abstract
The study of quantum thermal machines, and more generally of open quantum systems, often relies on master equations. Two approaches are mainly followed. On the one hand, there is the widely used, but often criticized, local approach, where machine sub-systems locally couple to thermal baths. On the other hand, in the more established global approach, thermal baths couple to global degrees of freedom of the machine. There has been debate as to which of these two conceptually different approaches should be used in situations out of thermal equilibrium. Here we compare the local and global approaches against an exact solution for a particular class of thermal machines. We consider thermodynamically relevant observables, such as heat currents, as well as the quantum state of the machine. Our results show that the use of a local master equation is generally well justified. In particular, for weak inter-system coupling, the local approach agrees with the exact solution, whereas the global approach fails for non-equilibrium situations. For intermediate coupling, the local and the global approach both agree with the exact solution and for strong coupling, the global approach is preferable. These results are backed by detailed derivations of the regimes of validity for the respective approaches.
Published version. See also the related work by J. Onam Gonzalez et al. arXiv:1707.09228
References in corpus (11)
- Quantum Thermodynamic Cycles and quantum heat engines
- Single ion heat engine with maximum efficiency at maximum power
- Thermoelectric energy harvesting with quantum dots
- Markovian Master Equations: A Critical Study
- Modeling heat transport through completely positive maps
- Microscopic derivation of the Jaynes-Cummings model with cavity losses
- Internal Consistency of Fault-Tolerant Quantum Error Correction in Light of Rigorous Derivations of the Quantum Markovian Limit
- Autonomous Quantum Refrigerator in a Circuit-QED Architecture Based on a Josephson Junction
- The equilibrium states of open quantum systems in the strong coupling regime
- Microscopic theory of a non-equilibrium open bosonic chain
- Violation of Onsager's theorem in approximate master equation approaches
Cited by in corpus (21)
- Colloquium: Quantum heat transport in condensed matter systems
- Open Quantum System Dynamics: recovering positivity of the Redfield equation via Partial-Secular Approximation
- A phenomenological position and energy resolving Lindblad approach to quantum kinetics
- A quantum heat engine with coupled superconducting resonators
- Coherences and the thermodynamic uncertainty relation: Insights from quantum absorption refrigerators
- Three-qubit refrigerator with two-body interactions
- Multifunctional quantum thermal device utilizing three qubits
- A cotunneling mechanism for all-electrical Electron Spin Resonance of single adsorbed atoms
- Open system dynamics from thermodynamic compatibility
- Heat transport through a superconducting artificial atom
- A quantum open system model of molecular battery charged by excitons
- Wigner entropy production and heat transport in linear quantum lattices
- Numerically "exact" simulations of entropy production in the fully quantum regime: Boltzmann entropy versus von Neumann entropy
- Thermalization and dephasing in collisional reservoirs
- Machine learning applied to quantum synchronization-assisted probing
- Clausius inequality versus quantum coherence
- Simulating quantum transport via collisional models on a digital quantum computer
- Thermodynamics of the Coarse-Graining Master Equation
- Transport in Conductors and Rectifiers: Mean-Field Redfield Equations and Non-Equilibrium Green's Functions
- Magnetically controlled quantum thermal devices via three nearest-neighbor coupled spin-1/2 systems
- Topological signatures in a weakly dissipative Kitaev chain of finite length