Stochastic Thermodynamic Cycles of a Mesoscopic Thermoelectric Engine
- URL: http://arxiv.org/abs/2010.06853v2
- Date: Sun, 7 Feb 2021 13:02:37 GMT
- Title: Stochastic Thermodynamic Cycles of a Mesoscopic Thermoelectric Engine
- Authors: R David Mayrhofer, Cyril Elouard, Janine Splettstoesser and Andrew N
Jordan
- Abstract summary: We analyze a steady-state thermoelectric engine, whose working substance consists of two capacitively coupled quantum dots.
In single realizations of the dynamics of this steady-state engine autonomous, 4-stroke cycles can be identified.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We analyze a steady-state thermoelectric engine, whose working substance
consists of two capacitively coupled quantum dots. One dot is tunnel-coupled to
a hot reservoir serving as a heat source, the other one to two electrically
biased reservoirs at a colder temperature, such that work is extracted under
the form of a steady-state current against the bias. In single realizations of
the dynamics of this steady-state engine autonomous, 4-stroke cycles can be
identified. The cycles are purely stochastic, in contrast to mechanical
autonomous engines which exhibit self-oscillations. In particular, these cycles
fluctuate in direction and duration, and occur in competition with other
spurious cycles. Using a stochastic thermodynamic approach, we quantify the
cycle fluctuations and relate them to the entropy produced during individual
cycles. We identify the cycle mainly responsible for the engine performance and
quantify its statistics with tools from graph theory. We show that such
stochastic cycles are made possible because the work extraction mechanism is
itself stochastic instead of the periodic time dependence in the
working-substance Hamiltonian which can be found in conventional mechanical
engines. Our investigation brings new perspectives about the connection between
cyclic and steady-state engines.
Related papers
- Time-resolved Stochastic Dynamics of Quantum Thermal Machines [0.0]
We present a framework that resolves the dynamics of quantum thermal machines into cycles that are classified as engine-like, cooling-like, or idle.
Our framework presents a novel approach in characterizing thermal machines, with significant relevance to modern experiments such as mesoscopic transport using quantum dots.
arXiv Detail & Related papers (2024-08-01T16:38:49Z) - Dynamically Emergent Quantum Thermodynamics: Non-Markovian Otto Cycle [49.1574468325115]
We revisit the thermodynamic behavior of the quantum Otto cycle with a focus on memory effects and strong system-bath couplings.
Our investigation is based on an exact treatment of non-Markovianity by means of an exact quantum master equation.
arXiv Detail & Related papers (2023-08-18T11:00:32Z) - Quantum field heat engine powered by phonon-photon interactions [58.720142291102135]
We present a quantum heat engine based on a cavity with two oscillating mirrors.
The engine performs an Otto cycle during which the walls and a field mode interact via a nonlinear Hamiltonian.
arXiv Detail & Related papers (2023-05-10T20:27:15Z) - Quantum dynamic and geometric phases in harmonic oscillator, spin 1/2
and two-level thermal engines systems [0.0]
We study the dynamics of a quantum thermal engine and a quantum thermal engine whose working medium is spin 1/2 system.
The role of times durations of such steps in the quantum engines for getting maximal efficiency is analyzed.
Since the separate steps in thermal engines describe non-cyclic circuits, we propose to use a special method for measuring geometric phases in thermal engines for non-cyclic circuits.
arXiv Detail & Related papers (2022-12-01T13:31:44Z) - Finite-time quantum Otto engine with a squeezed thermal bath: Role of
quantum coherence and squeezing in the performance and fluctuations [7.533259024252197]
We consider a finite-time quantum Otto heat engine that consists of two isochoric (thermal-contact) process.
We derive the analytical expressions for the thermodynamic quantities of the two-level heat engine.
Our results clarify the role of coherence and squeezing in the performance and fluctuations in the quantum Otto engines.
arXiv Detail & Related papers (2022-05-26T12:07:51Z) - Gauge Quantum Thermodynamics of Time-local non-Markovian Evolutions [77.34726150561087]
We deal with a generic time-local non-Markovian master equation.
We define current and power to be process-dependent as in classical thermodynamics.
Applying the theory to quantum thermal engines, we show that gauge transformations can change the machine efficiency.
arXiv Detail & Related papers (2022-04-06T17:59:15Z) - The problem of engines in statistical physics [62.997667081978825]
Engines are open systems that can generate work cyclically, at the expense of an external disequilibrium.
Recent advances in the theory of open quantum systems point to a more realistic description of autonomous engines.
We show how the external loading force and the thermal noise may be incorporated into the relevant equations of motion.
arXiv Detail & Related papers (2021-08-17T03:59:09Z) - Observation of Time-Crystalline Eigenstate Order on a Quantum Processor [80.17270167652622]
Quantum-body systems display rich phase structure in their low-temperature equilibrium states.
We experimentally observe an eigenstate-ordered DTC on superconducting qubits.
Results establish a scalable approach to study non-equilibrium phases of matter on current quantum processors.
arXiv Detail & Related papers (2021-07-28T18:00:03Z) - Collective effects on the performance and stability of quantum heat
engines [62.997667081978825]
Recent predictions for quantum-mechanical enhancements in the operation of small heat engines have raised renewed interest.
One essential question is whether collective effects may help to carry enhancements over larger scales.
We study how power, efficiency and constancy scale with the number of spins composing the engine.
arXiv Detail & Related papers (2021-06-25T18:00:07Z) - Autonomous implementation of thermodynamic cycles at the nanoscale [0.0]
We build an autonomous model that implements a thermodynamic cycle in a certain parameter regime.
We find that a cycle analysis for a single-electron working fluid is it not justified, but a few-electron working fluid could suffice to justify it.
arXiv Detail & Related papers (2021-01-13T12:07:58Z) - Finite-time quantum Stirling heat engine [0.0]
We study the thermodynamic performance of the finite-time non-regenerative Stirling cycle used as a quantum heat engine.
We find that the finite-time dynamics and thermodynamics of the cycle depend non-trivially on the different time scales at play.
arXiv Detail & Related papers (2020-09-21T17:19:14Z)
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.