Generation of entanglement and non-stationary states via competing coherent and incoherent bosonic hopping
- URL: http://arxiv.org/abs/2501.09790v1
- Date: Thu, 16 Jan 2025 19:00:02 GMT
- Title: Generation of entanglement and non-stationary states via competing coherent and incoherent bosonic hopping
- Authors: Parvinder Solanki, Albert Cabot, Matteo Brunelli, Federico Carollo, Christoph Bruder, Igor Lesanovsky,
- Abstract summary: Incoherent processes added to unitary dynamics are typically deemed detrimental since they are expected to diminish quantum features such as superposition and entanglement.
We show that the mere addition of incoherent hopping, which results in a statistical coupling between the bosonic modes, leads to steady states with robust quantum entanglement.
- Score: 0.0
- License:
- Abstract: Incoherent stochastic processes added to unitary dynamics are typically deemed detrimental since they are expected to diminish quantum features such as superposition and entanglement. Instead of exhibiting energy-conserving persistent coherent motion, the dynamics of such open systems feature, in most cases, a steady state, which is approached in the long-time limit from all initial conditions. This can, in fact, be advantageous as it offers a mechanism for the creation of robust quantum correlations on demand without the need for fine-tuning. Here, we show this for a system consisting of two coherently coupled bosonic modes, which is a paradigmatic scenario for the realization of quantum resources such as squeezed entangled states. Rather counterintuitively, the mere addition of incoherent hopping, which results in a statistical coupling between the bosonic modes, leads to steady states with robust quantum entanglement and enables the emergence of persistent coherent non-stationary behavior.
Related papers
- Quantum correlations in the steady state of light-emitter ensembles from
perturbation theory [0.0]
In systems of light emitters subject to single-emitter or two-emitter driving, the steady state perturbed away from the U(1) limit exhibits spin squeezing.
Our main result is that in systems of light emitters subject to single-emitter or two-emitter driving, the steady state perturbed away from the U(1) limit generically exhibits spin squeezing.
arXiv Detail & Related papers (2024-02-26T18:50:30Z) - Frequency-resolved Purcell effect for the dissipative generation of
steady-state entanglement [49.1574468325115]
We report a driven-dissipative mechanism to generate stationary entangled $W$ states among strongly-interacting quantum emitters placed within a cavity.
The non-harmonic energy structure of the interacting ensemble allows this transition to be resonantly selected by the cavity.
Evidence of this purely dissipative mechanism should be observable in state-of-the-art cavity QED systems in the solid-state.
arXiv Detail & Related papers (2023-12-19T18:04:22Z) - Spectral chaos bounds from scaling theory of maximally efficient
quantum-dynamical scrambling [49.1574468325115]
A key conjecture about the evolution of complex quantum systems towards an ergodic steady state, known as scrambling, is that this process acquires universal features when it is most efficient.
We develop a single- parameter scaling theory for the spectral statistics in this scenario, which embodies exact self-similarity of the spectral correlations along the complete scrambling dynamics.
We establish that scaling predictions are matched by a privileged process, and serve as bounds for other dynamical scrambling scenarios, allowing one to quantify inefficient or incomplete scrambling on all timescales.
arXiv Detail & Related papers (2023-10-17T15:41:50Z) - Quantum coherence controls the nature of equilibration in coupled
chaotic systems [0.0]
Quantum coherence of the initial product states in the uncoupled eigenbasis can be viewed as a resource for equilibration and approach to thermalization.
Results are given for four distinct perturbation strength regimes, the ultra-weak, weak, intermediate, and strong regimes.
Maximally coherent initial states thermalize for any perturbation strength in spite of the fact that in the ultra-weak perturbative regime the underlying eigenstates of the system have a tensor product structure and are not at all thermal-like.
arXiv Detail & Related papers (2022-04-15T17:33:44Z) - Unconventional mechanism of virtual-state population through dissipation [125.99533416395765]
We report a phenomenon occurring in open quantum systems by which virtual states can acquire a sizable population in the long time limit.
This means that the situation where the virtual state remains unpopulated can be metastable.
We show how these results can be relevant for practical questions such as the generation of stable and metastable entangled states in dissipative systems of interacting qubits.
arXiv Detail & Related papers (2022-02-24T17:09:43Z) - From geometry to coherent dissipative dynamics in quantum mechanics [68.8204255655161]
We work out the case of finite-level systems, for which it is shown by means of the corresponding contact master equation.
We describe quantum decays in a 2-level system as coherent and continuous processes.
arXiv Detail & Related papers (2021-07-29T18:27:38Z) - Unpredictability and entanglement in open quantum systems [0.0]
We show that unpredictability and quantum entanglement can coexist even in the long time limit.
We show that the required many-body interactions for the cellular automaton embedding can be efficiently realized within a variational quantum simulator platform.
arXiv Detail & Related papers (2021-06-14T18:00:12Z) - 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) - Non-equilibrium stationary states of quantum non-Hermitian lattice
models [68.8204255655161]
We show how generic non-Hermitian tight-binding lattice models can be realized in an unconditional, quantum-mechanically consistent manner.
We focus on the quantum steady states of such models for both fermionic and bosonic systems.
arXiv Detail & Related papers (2021-03-02T18:56:44Z) - 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) - Non-equilibrium steady-states of memoryless quantum collision models [0.0]
We show that only a coupling Hamiltonian in the energy-preserving form drives the system to thermal equilibrium.
We characterize the specific form of system-environment interaction that drives the system to a steady-state exhibiting coherence in the energy eigenbasis.
arXiv Detail & Related papers (2020-01-06T19:00:01Z)
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.