Quantum correlations enhanced in hybrid optomechanical system via phase tuning
- URL: http://arxiv.org/abs/2410.09848v1
- Date: Sun, 13 Oct 2024 14:11:07 GMT
- Title: Quantum correlations enhanced in hybrid optomechanical system via phase tuning
- Authors: K. B. Emale, J. -X. Peng, P. Djorwe, A. K. Sarma, Abdourahimi, A. -H. Abdel-Aty, K. S. Nisar, S. G. N. Engo,
- Abstract summary: This work presents a theoretical framework for enhancing quantum correlations in a hybrid double-cavity optomechanical system.
We find that tuning the phase $phi$ is essential for maximizing photon-phonon entanglement.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: This work presents a theoretical framework for enhancing quantum correlations in a hybrid double-cavity optomechanical system that hosts an atomic ensemble. We investigate the role of the coupling phase $\phi$ between cavity 1 and the atomic ensemble in optimizing quantum correlations, i.e., bipartite/tripartite quantum entanglement and quantum discord. By employing metrics such as logarithmic negativity for bipartite entanglement and minimum residual contangle for genuine tripartite entanglement, we demonstrate that tuning the phase $\phi$ is essential for maximizing photon-phonon entanglement. Specifically, we find that optimal entanglement occurs at $\phi=n\pi$, with distinct conditions for odd and even integers $n$. Our results also indicate that the quantum entanglement achieved in this system is robust against thermal fluctuations, making it a promising candidate for applications in quantum information processing and quantum computing. Furthermore, this research highlights the significance of phase tuning in controlling quantum correlations, paving the way for advancements in quantum technologies.
Related papers
- Machine Learning Aided Scattering Mitigation in a Quantum System [7.641154478570334]
We use Long Short-Term Memory (LSTM) to mitigate the detrimental impact of scattering in quantum systems.
Our setup involves generating two-mode squeezed light via four-wave mixing in warm rubidium vapor, with one mode subjected to a scatterer to disrupt quantum correlations.
We demonstrate a 74.7% recovery of mutual information and 87.7% recovery of two-mode squeezing, despite significant photon loss.
arXiv Detail & Related papers (2024-09-24T21:11:26Z) - Syncopated Dynamical Decoupling for Suppressing Crosstalk in Quantum
Circuits [12.29963230632145]
We study the use of dynamical decoupling in characterizing undesired two-qubit couplings and the underlying single-qubit decoherence.
We develop a syncopated decoupling technique which protects against decoherence and selectively targets unwanted two-qubit interactions.
arXiv Detail & Related papers (2024-03-12T17:18:35Z) - Amplification of quantum transfer and quantum ratchet [56.47577824219207]
We study a model of amplification of quantum transfer and making it directed which we call the quantum ratchet model.
The ratchet effect is achieved in the quantum control model with dissipation and sink, where the Hamiltonian depends on vibrations in the energy difference synchronized with transitions between energy levels.
Amplitude and frequency of the oscillating vibron together with the dephasing rate are the parameters of the quantum ratchet which determine its efficiency.
arXiv Detail & Related papers (2023-12-31T14:04:43Z) - Limits for coherent optical control of quantum emitters in layered
materials [49.596352607801784]
coherent control of a two-level system is among the most essential challenges in modern quantum optics.
We use a mechanically isolated quantum emitter in hexagonal boron nitride to explore the individual mechanisms which affect the coherence of an optical transition under resonant drive.
New insights on the underlying physical decoherence mechanisms reveals a limit in temperature until which coherent driving of the system is possible.
arXiv Detail & Related papers (2023-12-18T10:37:06Z) - Ergodicity Breaking Under Confinement in Cold-Atom Quantum Simulators [1.3367376307273382]
We consider the spin-$1/2$ quantum link formulation of $1+1$D quantum electrodynamics with a topological $theta$-angle.
We show an interplay between confinement and the ergodicity-breaking paradigms of quantum many-body scarring and Hilbert-space fragmentation.
arXiv Detail & Related papers (2023-01-18T19:00:01Z) - Tunable photon-mediated interactions between spin-1 systems [68.8204255655161]
We show how to harness multi-level emitters with several optical transitions to engineer photon-mediated interactions between effective spin-1 systems.
Our results expand the quantum simulation toolbox available in cavity QED and quantum nanophotonic setups.
arXiv Detail & Related papers (2022-06-03T14:52:34Z) - Exploring quantum correlations in a hybrid optomechanical system [0.0]
We propose a scheme of two coupled optomechanical cavities to enhance the intracavity entanglement.
Photon hopping is employed to establish couplings between optical modes, while phonon is utilized to establish couplings between mechanical tunneling resonators.
arXiv Detail & Related papers (2022-04-16T08:47:50Z) - Coherent quantum annealing in a programmable 2000-qubit Ising chain [1.2472275770062884]
We show coherent evolution through a quantum phase transition in the paradigmatic setting of the 1D transverse-field Ising chain.
Results are in quantitative agreement with analytical solutions to the closed-system quantum model.
These experiments demonstrate that large-scale quantum annealers can be operated coherently.
arXiv Detail & Related papers (2022-02-11T19:00:00Z) - Realization of arbitrary doubly-controlled quantum phase gates [62.997667081978825]
We introduce a high-fidelity gate set inspired by a proposal for near-term quantum advantage in optimization problems.
By orchestrating coherent, multi-level control over three transmon qutrits, we synthesize a family of deterministic, continuous-angle quantum phase gates acting in the natural three-qubit computational basis.
arXiv Detail & Related papers (2021-08-03T17:49:09Z) - Enhancing nonclassical bosonic correlations in a Quantum Walk network
through experimental control of disorder [50.591267188664666]
We experimentally realize a controllable inhomogenous Quantum Walk dynamics.
We observe two photon states which exhibit an enhancement in the quantum correlations between two modes of the network.
arXiv Detail & Related papers (2021-02-09T10:57:00Z) - Quantum Statistical Complexity Measure as a Signalling of Correlation
Transitions [55.41644538483948]
We introduce a quantum version for the statistical complexity measure, in the context of quantum information theory, and use it as a signalling function of quantum order-disorder transitions.
We apply our measure to two exactly solvable Hamiltonian models, namely: the $1D$-Quantum Ising Model and the Heisenberg XXZ spin-$1/2$ chain.
We also compute this measure for one-qubit and two-qubit reduced states for the considered models, and analyse its behaviour across its quantum phase transitions for finite system sizes as well as in the thermodynamic limit by using Bethe ansatz.
arXiv Detail & Related papers (2020-02-05T00:45:21Z)
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.