Quantum coherence dynamics of displaced squeezed thermal state in a
Non-Markovian environment
- URL: http://arxiv.org/abs/2202.01726v1
- Date: Thu, 3 Feb 2022 17:41:11 GMT
- Title: Quantum coherence dynamics of displaced squeezed thermal state in a
Non-Markovian environment
- Authors: Md. Manirul Ali, R. Chandrashekar, and S.S. Naina Mohammed
- Abstract summary: We study the behavior of quantum coherence of a displaced squeezed thermal state in contact with an external bath.
We find that when the coupling between the system and the environment is weak, the coherence decays monotonically and exhibit a Markovian nature.
We also present the steady state dynamics of the coherence in the long time limit in both low and high temperature regime.
- Score: 1.5924410290166868
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: The dynamical behavior of quantum coherence of a displaced squeezed thermal
state in contact with an external bath is discussed in the present work. We use
a Fano-Anderson type of Hamiltonian to model the environment and solve the
quantum Langevin equation. From the solution of the quantum Langevin equation
we obtain the Green's functions which are used to calculate the expectation
value of the quadrature operators which are in turn used to construct the
covariance matrix. We use a relative entropy based measure to calculate the
quantum coherence of the mode. The single mode squeezed thermal state is
studied in the Ohmic, sub-Ohmic and the super-Ohmic limits for different values
of the mean photon number. In all these limits, we find that when the coupling
between the system and the environment is weak, the coherence decays
monotonically and exhibit a Markovian nature. When the system and the
environment are strongly coupled, we observe that the evolution is initially
Markovian and after some time it becomes non-Markovian. The non-Markovian
effect is due to the environmental back action on the system. Finally, we also
present the steady state dynamics of the coherence in the long time limit in
both low and high temperature regime. We find that the qualitative behavior
remains the same in both the low and high temperature limits. But quantitative
values differ because the coherence in the system is lower due to thermal
decoherence.
Related papers
- Thermodynamic Roles of Quantum Environments: From Heat Baths to Work Reservoirs [49.1574468325115]
Environments in quantum thermodynamics usually take the role of heat baths.
We show that within the same model, the environment can take three different thermodynamic roles.
The exact role of the environment is determined by the strength and structure of the coupling.
arXiv Detail & Related papers (2024-08-01T15:39:06Z) - Quantum thermodynamics of periodically driven polaritonic systems [0.0]
We investigate the energy distribution and quantum thermodynamics in periodically driven polaritonic systems at room temperature.
We compute the thermodynamic performance during harmonic modulation and demonstrate that maximum efficiency occurs at resonance.
arXiv Detail & Related papers (2022-07-03T04:32:11Z) - Quantum energy current and quantum coherence of a spin chain in a
non-Markovian environment [0.0]
We investigate the behavior in time of the energy current between a quantum spin chain and its surrounding non-Markovian, finite temperature baths.
This model plays a fundamental role for the study of quantum system evolution towards thermal equilibrium in an open system.
arXiv Detail & Related papers (2022-06-01T08:41:03Z) - Dynamical Crossover from Markovian to Non-Markovian dynamics in the
strong coupling regime [0.0]
We study the dynamics of the coherent state, squeezed state, and displaced squeezed state.
All the states exhibit Markovian evolution in the weak coupling limit.
In the strong coupling limit, the dynamics for the initial period is Markovian and after a certain period, it becomes non-Markovian.
arXiv Detail & Related papers (2022-01-19T16:08:56Z) - Fast Thermalization from the Eigenstate Thermalization Hypothesis [69.68937033275746]
Eigenstate Thermalization Hypothesis (ETH) has played a major role in understanding thermodynamic phenomena in closed quantum systems.
This paper establishes a rigorous link between ETH and fast thermalization to the global Gibbs state.
Our results explain finite-time thermalization in chaotic open quantum systems.
arXiv Detail & Related papers (2021-12-14T18:48:31Z) - Taking the temperature of a pure quantum state [55.41644538483948]
Temperature is a deceptively simple concept that still raises deep questions at the forefront of quantum physics research.
We propose a scheme to measure the temperature of such pure states through quantum interference.
arXiv Detail & Related papers (2021-03-30T18:18:37Z) - Evolution of a Non-Hermitian Quantum Single-Molecule Junction at
Constant Temperature [62.997667081978825]
We present a theory for describing non-Hermitian quantum systems embedded in constant-temperature environments.
We find that the combined action of probability losses and thermal fluctuations assists quantum transport through the molecular junction.
arXiv Detail & Related papers (2021-01-21T14:33:34Z) - Analog cosmological reheating in an ultracold Bose gas [58.720142291102135]
We quantum-simulate the reheating-like dynamics of a generic cosmological single-field model in an ultracold Bose gas.
Expanding spacetime as well as the background oscillating inflaton field are mimicked in the non-relativistic limit.
The proposed experiment has the potential of exploring the evolution up to late times even beyond the weak coupling regime.
arXiv Detail & Related papers (2020-08-05T18:00:26Z) - Quantum systems correlated with a finite bath: nonequilibrium dynamics
and thermodynamics [0.0]
We derive a master equation that accounts for system-bath correlations and includes, at a coarse-grained level, a dynamically evolving bath.
Our work paves the way for studying a variety of nanoscale quantum technologies including engines, refrigerators, or heat pumps.
arXiv Detail & Related papers (2020-08-05T15:19:29Z) - Out-of-equilibrium quantum thermodynamics in the Bloch sphere:
temperature and internal entropy production [68.8204255655161]
An explicit expression for the temperature of an open two-level quantum system is obtained.
This temperature coincides with the environment temperature if the system reaches thermal equilibrium with a heat reservoir.
We show that within this theoretical framework the total entropy production can be partitioned into two contributions.
arXiv Detail & Related papers (2020-04-09T23:06:43Z)
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.