$\mathcal{PT}-$symmetry and chaos control via dissipative optomechanical
coupling
- URL: http://arxiv.org/abs/2302.13064v1
- Date: Sat, 25 Feb 2023 11:41:45 GMT
- Title: $\mathcal{PT}-$symmetry and chaos control via dissipative optomechanical
coupling
- Authors: S. R. Mbokop Tchounda, P. Djorw\'e, M. V. Tchakui, S. G. Nana Engo
- Abstract summary: We study a dissipative, mechanically coupled optomechanical system that accommodates gain and loss.
The gain is engineered by driven a purely dispersive optomechanical cavity with a blue-detuned electromagnetic field.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We study a dissipative, mechanically coupled optomechanical system that
accommodates gain and loss. The gain (loss) is engineered by driven a purely
dispersive optomechanical cavity with a blue-detuned (red-detuned)
electromagnetic field. By taking into account the dissipative coupling, the
Exceptional Point (EP), which is the $\mathcal{PT}-$symmetry phase transition,
occurs at low threshold driving strength compared to the purely dispersive
system. In the linear regime, the $\mathcal{PT}-$symmetry is unbroken and the
dissipative coupling induces strong coupling between the mechanical resonators,
leading to an increase in energy exchange. For sufficiently strong driving, the
system enters into a nonlinear regime where the $\mathcal{PT}-$symmetry is
broken. In this regime, the mechanical resonators exhibit chaotic beats
like-behaviour in the purely dispersive system. By switching on the dissipative
coupling, the complex dynamics is switched off, restoring regular dynamics to
the system. This work suggests ways to probe quantum phenomena in dissipative
$\mathcal{PT}-$symmetric systems at low-threshold driving strength. It also
provides a new way to control complex dynamics in optomechanics and related
fields.
Related papers
- Quantum Phase Transitions in Optomechanical Systems [2.451326684641447]
We investigate the ground state properties of an optomechanical system consisting of a coupled cavity and mechanical modes.
By coupling atoms to the cavity mode, the hybrid system can undergo a quantum phase transition (QPT) at a hybrid critical point.
These results suggest that this optomechanical system complements other phase transition models for exploring novel critical phenomena.
arXiv Detail & Related papers (2023-08-29T13:09:48Z) - Unconditional Wigner-negative mechanical entanglement with
linear-and-quadratic optomechanical interactions [62.997667081978825]
We propose two schemes for generating Wigner-negative entangled states unconditionally in mechanical resonators.
We show analytically that both schemes stabilize a Wigner-negative entangled state that combines the entanglement of a two-mode squeezed vacuum with a cubic nonlinearity.
We then perform extensive numerical simulations to test the robustness of Wigner-negative entanglement attained by approximate CPE states stabilized in the presence of thermal decoherence.
arXiv Detail & Related papers (2023-02-07T19:00:08Z) - Correspondence between open bosonic systems and stochastic differential
equations [77.34726150561087]
We show that there can also be an exact correspondence at finite $n$ when the bosonic system is generalized to include interactions with the environment.
A particular system with the form of a discrete nonlinear Schr"odinger equation is analyzed in more detail.
arXiv Detail & Related papers (2023-02-03T19:17:37Z) - Parity-dependent unidirectional and chiral photon transfer in
reversed-dissipation cavity optomechanics [11.712867508048555]
We show broadband nonreciprocal photon transmission in the emphreversed-dissipation regime.
In the reversed-dissipation regime, the nonreciprocal bandwidth is no longer limited by the mechanical mode linewidth.
We find that the direction of the unidirectional and chiral energy transfer could be reversed by changing the emphparity of the Eps.
arXiv Detail & Related papers (2022-12-22T23:57:00Z) - Decimation technique for open quantum systems: a case study with
driven-dissipative bosonic chains [62.997667081978825]
Unavoidable coupling of quantum systems to external degrees of freedom leads to dissipative (non-unitary) dynamics.
We introduce a method to deal with these systems based on the calculation of (dissipative) lattice Green's function.
We illustrate the power of this method with several examples of driven-dissipative bosonic chains of increasing complexity.
arXiv Detail & Related papers (2022-02-15T19:00:09Z) - Combination of dissipative and dispersive coupling in the cavity
optomechanical systems [77.34726150561087]
An analysis is given for the Fabry-Perot cavity having a combination of dissipative and dispersive optomechanical coupling.
It is established that the combined coupling leads to optical rigidity.
arXiv Detail & Related papers (2022-01-24T19:25:39Z) - Exact solutions of interacting dissipative systems via weak symmetries [77.34726150561087]
We analytically diagonalize the Liouvillian of a class Markovian dissipative systems with arbitrary strong interactions or nonlinearity.
This enables an exact description of the full dynamics and dissipative spectrum.
Our method is applicable to a variety of other systems, and could provide a powerful new tool for the study of complex driven-dissipative quantum systems.
arXiv Detail & Related papers (2021-09-27T17:45:42Z) - Strong Coupling Optomechanics Mediated by a Qubit in the Dispersive
Regime [0.0]
dispersive, radiation-pressure interaction between the mechanical and the electromagnetic modes is typically very weak.
We show that if the interaction is mediated by a Josephson circuit, one can have an effective dynamic corresponding to a huge enhancement of the single-photon optomechanical coupling.
arXiv Detail & Related papers (2021-07-29T20:24:20Z) - Optomechanical dynamics in the $\mathcal{PT}$- and
broken-$\mathcal{PT}$-symmetric regimes [0.36944296923226316]
We study the dynamics of typical optomechanical systems in $mathcalPT$- and broken-$mathcalPT$-symmetric regimes.
We find that by appropriately tuning either mechanical gain or optomechanical coupling, both phase transitions of the $mathcalPT$-symmetry and stability of the system can be flexibly controlled.
arXiv Detail & Related papers (2021-07-29T10:54:00Z) - Parity-time symmetric systems with memory [0.0]
We introduce a $mathcalPT$-symmetric (balanced gain and loss) system with memory.
We investigate its dynamics analytically and numerically.
Our results indicate that $mathcalPT$-symmetric systems with memory show a rich landscape.
arXiv Detail & Related papers (2020-09-21T23:04:56Z) - Waveguide quantum optomechanics: parity-time phase transitions in
ultrastrong coupling regime [125.99533416395765]
We show that the simplest set-up of two qubits, harmonically trapped over an optical waveguide, enables the ultrastrong coupling regime of the quantum optomechanical interaction.
The combination of the inherent open nature of the system and the strong optomechanical coupling leads to emerging parity-time (PT) symmetry.
The $mathcalPT$ phase transition drives long-living subradiant states, observable in the state-of-the-art waveguide QED setups.
arXiv Detail & Related papers (2020-07-04T11:02:20Z)
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.