Transport and thermodynamics in quantum junctions: A scattering approach
arXiv:1912.03773 · doi:10.1063/5.0010127
Abstract
We present a scattering approach for the study of the transport and thermodynamics of quantum systems strongly coupled to their thermal environment(s). This formalism recovers the standard non-equilibrium Green's function expressions for quantum transport and reproduces recently obtained results for the quantum thermodynamic of slowly driven systems. Using this approach, new results have been obtained. First, we derived of a general explicit expression for non-equilibrium steady state density matrix of a system compromised of multiple infinite baths coupled through a general interaction. Then, we obtained a general expression for the dissipated power for the driven non-interacting resonant level to first order in the driving speeds, where both the dot energy level and its couplings are changing, without invoking the wide band approximation. In addition, we also showed that the symmetric splitting of system bath interaction, employed for the case of a system coupled to one bath to determine the effective system Hamiltonian [Phys. Rev. B 93, 115318 (2016)] is valid for the multiple baths case as well. Finally, we demonstrated an equivalence of our method to the Landauer-Buttiker formalism and its extension to slowly driven systems developed by von Oppen and co-workers [Phys. Rev. Lett. 120, 107701 (2018)]. To demonstrate the use of this formalism we analyze the operation a device in which the dot is driven cyclically between two leads under strong coupling conditions. We also generalize the previously obtained expression for entropy production in such driven processes to the many-bath case.
86 pages, 2 figures
References in corpus (15)
- The numerical renormalization group method for quantum impurity systems
- Energy Dissipation and Transport in Nanoscale Devices
- Quantum Thermodynamics: A Nonequilibrium Green's Functions Approach
- Scattering theory of current-induced forces in mesoscopic systems
- Conserving Approximations in Time-Dependent Density Functional Theory
- A universal approach to quantum thermodynamics in the strong coupling regime
- Periodic energy transport and entropy production in quantum electronics
- Landauer-Büttiker approach to strongly coupled quantum thermodynamics: inside-outside duality of entropy evolution
- Quantum thermodynamics of the resonant-level model with driven system-bath coupling
- Energy distribution and local fluctuations in strongly coupled open quantum systems: The extended resonant level model
- The universality of electronic friction II: Equivalence of the quantum-classical Liouville equation approach with von Oppen's nonequilibrium Green's function methods out of equilibrium
- Quantum Thermodynamics for Driven Dissipative Bosonic Systems
- Molecular Heat Engines: Quantum Coherence Effects
- Nonequilibrium density matrix for simultaneous heat and charge steady-state transport in quantum open systems
- Quantum thermodynamics of nanoscale steady states far from equilibrium
Cited by in corpus (4)
- Green's functions perspective on nonequilibrium thermodynamics of open quantum systems strongly coupled to baths
- Entropy and information flow in quantum systems strongly coupled to baths
- Numerical study of non-adiabatic quantum thermodynamics of the driven resonant level model: Non-equilibrium entropy production and higher order corrections
- Thermoelectric study of the time-dependent Resonant Level Model