Non-Markovian Quantum Mpemba effect
- URL: http://arxiv.org/abs/2402.05756v2
- Date: Tue, 30 Apr 2024 12:14:03 GMT
- Title: Non-Markovian Quantum Mpemba effect
- Authors: David J. Strachan, Archak Purkayastha, Stephen R. Clark,
- Abstract summary: We study the Mpemba effect, where a far-from-equilibrium state may relax faster than a state closer to equilibrium.
Our work provides new insights into the rich physics underlying accelerated relaxation in quantum systems.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Since it's rediscovery in the twentieth century, the Mpemba effect, where a far-from-equilibrium state may relax faster than a state closer to equilibrium, has been extensively studied in classical systems and has recently received significant attention in quantum systems. Many theories explaining this counter-intuitive behavior in classical systems rely on memory effects. However, in quantum systems, the relation between the Mpemba effect and memory has remained unexplored. In this work, we consider a general non-Markovian open quantum setting and reveal new classes of quantum Mpemba effects, with no analog in Markovian quantum dynamics. Generically, open quantum dynamics possess a finite memory time and a unique steady state. Due to non-Markovian dynamics, even if the system is initialized in the steady state it can take a long time to relax back. We find other initial states that reach the steady state much faster. Most notably, we demonstrate that there can be an initial state in which the system reaches the steady state within the finite memory time itself, therefore giving the fastest possible relaxation to stationarity. We verify the effect for quantum dot systems coupled to electronic reservoirs in equilibrium and non-equilibrium setups at weak, intermediate and strong coupling, and both with and without interactions. Our work provides new insights into the rich physics underlying accelerated relaxation in quantum systems.
Related papers
- Imaginary-time Mpemba effect in quantum many-body systems [2.54990557236581]
We report a novel phenomenon of the Mpemba effect in the imaginary-time relaxation dynamics in quantum many-body systems.
The emergence of ITME is intimately associated with the low-energy excitations in quantum many-body systems.
arXiv Detail & Related papers (2024-09-10T14:23:13Z) - Observation of quantum strong Mpemba effect [0.568742895734281]
We report the first experiment, as far as we know,about the strong Mpemba effect in a single trapped ion system.
Our work provides an efficient strategy to exponentially accelerate relaxations of quantum system to their stationary state.
It could open up the door to engineer a wide range of dissipative quantum systems.
arXiv Detail & Related papers (2024-01-29T08:25:34Z) - Learning in quantum games [41.67943127631515]
We show that the induced quantum state dynamics decompose into (i) a classical, commutative component which governs the dynamics of the system's eigenvalues.
We find that the FTQL dynamics incur no more than constant regret in all quantum games.
arXiv Detail & Related papers (2023-02-05T08:23:04Z) - Accelerating relaxation in Markovian open quantum systems through
quantum reset processes [0.0]
We claim that using quantum reset, a common and important operation in quantum timescales, is able to be accelerated significantly.
This faster relaxation induced by the reset protocol is reminiscent of the quantum Mpemba effect.
Our new strategy to accelerate relaxations may also be applied to closed quantum systems or even some non-Markovian open quantum systems.
arXiv Detail & Related papers (2022-12-21T16:31:27Z) - Indication of critical scaling in time during the relaxation of an open
quantum system [34.82692226532414]
Phase transitions correspond to the singular behavior of physical systems in response to continuous control parameters like temperature or external fields.
Near continuous phase transitions, associated with the divergence of a correlation length, universal power-law scaling behavior with critical exponents independent of microscopic system details is found.
arXiv Detail & Related papers (2022-08-10T05:59:14Z) - Quantum Instability [30.674987397533997]
We show how a time-independent, finite-dimensional quantum system can give rise to a linear instability corresponding to that in the classical system.
An unstable quantum system has a richer spectrum and a much longer recurrence time than a stable quantum system.
arXiv Detail & Related papers (2022-08-05T19:53:46Z) - Canonically consistent quantum master equation [68.8204255655161]
We put forth a new class of quantum master equations that correctly reproduce the state of an open quantum system beyond the infinitesimally weak system-bath coupling limit.
Our method is based on incorporating the knowledge of the reduced steady state into its dynamics.
arXiv Detail & Related papers (2022-05-25T15:22:52Z) - Exponentially accelerated approach to stationarity in Markovian open
quantum systems through the Mpemba effect [0.0]
We show that the relaxation dynamics of Markovian open quantum systems can be accelerated exponentially by devising an optimal unitary transformation.
This initial "rotation" is engineered in such a way that the state of the quantum system becomes to the slowest decaying dynamical mode.
We illustrate our idea by showing how to achieve an exponential speed-up in the convergence to stationarity in Dicke models.
arXiv Detail & Related papers (2021-03-08T19:02:31Z) - Quantum Non-equilibrium Many-Body Spin-Photon Systems [91.3755431537592]
dissertation concerns the quantum dynamics of strongly-correlated quantum systems in out-of-equilibrium states.
Our main results can be summarized in three parts: Signature of Critical Dynamics, Driven Dicke Model as a Test-bed of Ultra-Strong Coupling, and Beyond the Kibble-Zurek Mechanism.
arXiv Detail & Related papers (2020-07-23T19:05:56Z) - Probabilistic Hysteresis from a Quantum Phase Space Perspective [0.0]
emphProbabilistic is a manifestation of cyclic irreversibility in a small, isolated classical system.
We show that classical ergodization can lead to a breakdown of quantum-classical correspondence.
arXiv Detail & Related papers (2020-05-31T15:40:55Z) - Quantum Zeno effect appears in stages [64.41511459132334]
In the quantum Zeno effect, quantum measurements can block the coherent oscillation of a two level system by freezing its state to one of the measurement eigenstates.
We show that the onset of the Zeno regime is marked by a $textitcascade of transitions$ in the system dynamics as the measurement strength is increased.
arXiv Detail & Related papers (2020-03-23T18:17:36Z)
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.