Numerically "exact" simulations of a quantum Carnot cycle: Analysis
using thermodynamic work diagrams
- URL: http://arxiv.org/abs/2205.09487v3
- Date: Thu, 28 Jul 2022 00:00:30 GMT
- Title: Numerically "exact" simulations of a quantum Carnot cycle: Analysis
using thermodynamic work diagrams
- Authors: Shoki Koyanagi and Yoshitaka Tanimura
- Abstract summary: We investigate the efficiency of a quantum Carnot engine based on open quantum dynamics theory.
Numerical simulations are conducted in a nonperturbative and non-Markovian SB coupling regime.
We find that the maximum efficiency is achieved in the quasi-static case.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We investigate the efficiency of a quantum Carnot engine based on open
quantum dynamics theory. The model includes time-dependent external fields for
the subsystems controlling the isothermal and isentropic processes and for the
system--bath (SB) interactions controlling the transition between these
processes. Numerical simulations are conducted in a nonperturbative and
non-Markovian SB coupling regime using the hierarchical equations of motion
under these fields at different cycle frequencies. The work applied to the
total system and the heat exchanged with the baths are rigorously evaluated. In
addition, by regarding quasi-static work as free energy, we compute the quantum
thermodynamic variables and analyze the simulation results using thermodynamic
work diagrams for the first time. Analysis of these diagrams indicates that, in
the strong SB coupling region, the fields for the SB interactions are major
sources of work, while in other regions, the field for the subsystem is a
source of work. We find that the maximum efficiency is achieved in the
quasi-static case and is determined solely by the bath temperatures, regardless
of the SB coupling strength, which is a numerical manifestation of Carnot's
theorem.
Related papers
- Pseudomode treatment of strong-coupling quantum thermodynamics [0.0]
The evaluation of thermodynamic quantities in strong-coupling regimes requires a nonperturbative knowledge of the bath dynamics.
We derive expressions for heat, work, and average system-bath interaction energy that only involve the autocorrelation function of the bath.
We show in particular that this method allows for an efficient numerical evaluation of thermodynamic quantities.
arXiv Detail & Related papers (2024-07-25T09:11:45Z) - Thermodynamics of adiabatic quantum pumping in quantum dots [50.24983453990065]
We consider adiabatic quantum pumping through a resonant level model, a single-level quantum dot connected to two fermionic leads.
We develop a self-contained thermodynamic description of this model accounting for the variation of the energy level of the dot and the tunnelling rates with the thermal baths.
arXiv Detail & Related papers (2023-06-14T16:29:18Z) - The laws of thermodynamics for quantum dissipative systems: A
quasi-equilibrium Helmholtz energy approach [0.0]
We investigate the thermal properties of both an isothermal process and a transition process between the adiabatic and isothermal states.
We find that the thermodynamic efficiency of this machine is zero because the field for the isothermal processes acts as a refrigerator.
arXiv Detail & Related papers (2022-05-23T23:05:53Z) - Heat transport and cooling performance in a nanomechanical system with
local and non local interactions [68.8204255655161]
We study heat transport through a one dimensional time-dependent nanomechanical system.
The system presents different stationary transport regimes depending on the driving frequency, temperature gradients and the degree of locality of the interactions.
arXiv Detail & Related papers (2022-02-21T12:03:54Z) - Accurate simulation and thermal tuning by temperature-adaptive boundary
interactions on quantum many-body systems [2.13230439190003]
We propose the temperature-adaptive entanglement simulator (TAES) that mimics and tunes the thermodynamics of the one-dimensional (1D) many-body system.
With the benchmark on 1D spin chains, TAES surpasses the state-of-the-art accuracy compared with the existing finite-temperature approaches.
arXiv Detail & Related papers (2021-04-30T15:21:06Z) - Qubit thermodynamics far from equilibrium: two perspectives about the
nature of heat and work in the quantum regime [68.8204255655161]
We develop an alternative theoretical framework for the thermodynamic analysis of two-level systems.
We observe the appearance of a new term of work, which represents the energy cost of rotating the Bloch vector in presence of the external field that defines the local Hamiltonian.
In order to illustrate our findings we study, from both perspectives, matter-radiation interaction processes for two different systems.
arXiv Detail & Related papers (2021-03-16T09:31:20Z) - Out-of-time-order correlations and the fine structure of eigenstate
thermalisation [58.720142291102135]
Out-of-time-orderors (OTOCs) have become established as a tool to characterise quantum information dynamics and thermalisation.
We show explicitly that the OTOC is indeed a precise tool to explore the fine details of the Eigenstate Thermalisation Hypothesis (ETH)
We provide an estimation of the finite-size scaling of $omega_textrmGOE$ for the general class of observables composed of sums of local operators in the infinite-temperature regime.
arXiv Detail & Related papers (2021-03-01T17:51:46Z) - Probing eigenstate thermalization in quantum simulators via
fluctuation-dissipation relations [77.34726150561087]
The eigenstate thermalization hypothesis (ETH) offers a universal mechanism for the approach to equilibrium of closed quantum many-body systems.
Here, we propose a theory-independent route to probe the full ETH in quantum simulators by observing the emergence of fluctuation-dissipation relations.
Our work presents a theory-independent way to characterize thermalization in quantum simulators and paves the way to quantum simulate condensed matter pump-probe experiments.
arXiv Detail & Related papers (2020-07-20T18:00:02Z) - Quantum Coherence and Ergotropy [0.0]
Constraints on work extraction are fundamental to our understanding of the thermodynamics of both classical and quantum systems.
In the quantum setting, finite-time control operations generate coherence in the instantaneous energy eigenbasis of the dynamical system.
We isolate and study the quantum coherent component to the work yield in such protocols.
arXiv Detail & Related papers (2020-06-09T17:50:13Z) - Quantum thermodynamics of two bosonic systems [0.0]
We study the energy exchange between two bosonic systems that interact via bilinear transformations in the mode operators.
This work finds its roots in a very recent formulation of quantum thermodynamics.
arXiv Detail & Related papers (2020-01-14T09:19:02Z) - Simulation of Thermal Relaxation in Spin Chemistry Systems on a Quantum
Computer Using Inherent Qubit Decoherence [53.20999552522241]
We seek to take advantage of qubit decoherence as a resource in simulating the behavior of real world quantum systems.
We present three methods for implementing the thermal relaxation.
We find excellent agreement between our results, experimental data, and the theoretical prediction.
arXiv Detail & Related papers (2020-01-03T11:48:11Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.