Controllable double optical bistability via photon and phonon
interaction in a hybrid optomechanical system
- URL: http://arxiv.org/abs/2105.05436v1
- Date: Wed, 12 May 2021 05:25:09 GMT
- Title: Controllable double optical bistability via photon and phonon
interaction in a hybrid optomechanical system
- Authors: Zhen Wang, Cheng Jiang, Yong He, Chang-Ying Wang, Xiao-Lei Yin,
Heng-Mei Li, Hong-Chun Yuan
- Abstract summary: The optical bistability have been studied theoretically in a multi-mode optomechanical system.
The bistable behavior of mean intracavity photon number in the right cavity can be tuned by adjusting the strength of the pump laser beam driving the left cavity.
- Score: 7.822868243648296
- License: http://creativecommons.org/publicdomain/zero/1.0/
- Abstract: The optical bistability have been studied theoretically in a multi-mode
optomechanical system with two mechanical oscillators independently coupled to
two cavities in addition to direct tunnel coupling between cavities. It is
proved that the bistable behavior of mean intracavity photon number in the
right cavity can be tuned by adjusting the strength of the pump laser beam
driving the left cavity. And the mean intracavity photon number is relatively
larger in the red sideband regime than that in the blue sideband regime.
Moreover, we have shown that the double optical bistability of intracavity
photon in the right cavity and the two steady-state positions of mechanical
resonators can be observed when the control field power is increased to a
critical value. Besides, the critical values for observing bistability and
double bistability can be tuned by adjusting the coupling coefficient between
two cavities and the coupling rates between cavities mode and mechanical mode.
Related papers
- Squeezing for Broadband Multidimensional Variational Measurement [55.2480439325792]
We show that optical losses inside cavity restrict back action exclusion due to loss noise.
We analyze how two-photon (nondegenerate) and conventional (degenerate) squeezing improve sensitivity with account optical losses.
arXiv Detail & Related papers (2023-10-06T18:41:29Z) - Dissipative stabilization of maximal entanglement between non-identical
emitters via two-photon excitation [49.1574468325115]
Two non-identical quantum emitters, when placed within a cavity and coherently excited at the two-photon resonance, can reach stationary states of nearly maximal entanglement.
We show that this mechanism is merely one among a complex family of phenomena that can generate both stationary and metastable entanglement when driving the emitters at the two-photon resonance.
arXiv Detail & Related papers (2023-06-09T16:49:55Z) - Coupling enhancement and symmetrization of single-photon optomechanics
in open quantum systems [0.76146285961466]
We study optimal reciprocal transport in symmetric optomechanics.
This work may pave the way to studying the single-photon optomechanical effects with current experimental platforms.
arXiv Detail & Related papers (2023-02-09T19:01:15Z) - Temperature gradient and asymmetric steady state correlations in
dissipatively coupled cascaded optomechanical systems [0.0]
We study the dynamics of a pair of optomechanical systems interacting dissipatively with a wave guide in a unidirectional way.
We explore both classical and quantum correlations established between the modes in both the transient and in the stationary regime.
We show that this unidirectional coupling establishes a temperature gradient between the mirrors, depending on the frequencies' detuning.
arXiv Detail & Related papers (2023-02-01T19:00:26Z) - Photon generation and entanglement in a double superconducting cavity [105.54048699217668]
We study the dynamical Casimir effect in a double superconducting cavity in a quantum electrodynamics architecture.
We study the creation of photons when the walls oscillate harmonically with a small amplitude.
arXiv Detail & Related papers (2022-07-18T16:43:47Z) - Quantum coherent feedback control with photons [2.83114308547142]
We study two-photon dynamics induced by the coherent feedback control of a cavity quantum electrodynamics (cavity-QED) system coupled to a waveguide.
We analyze the dynamics of two-photon processes in this coherent feedback network in two scenarios.
arXiv Detail & Related papers (2022-06-03T08:18:16Z) - Squeezing lights via a levitated cavity optomechanics [0.6091702876917279]
We consider an optically levitated nano-particle in a bichromatic cavity, in which two cavity modes could be excited by the scattering photons of the dual-tweezers respectively.
The ultra-strong coupling between the cavity field and torsional motion of nano-particle could be achieved for the current experimental conditions.
Even at room temperature, the single-mode light can be squeezed for more than 17 dB, which is far beyond the 3 dB limit.
arXiv Detail & Related papers (2021-12-30T14:52:19Z) - Localized vibrational modes in waveguide quantum optomechanics with
spontaneously broken PT symmetry [117.44028458220427]
We study theoretically two vibrating quantum emitters trapped near a one-dimensional waveguide and interacting with propagating photons.
In the regime of strong optomechanical interaction the light-induced coupling of emitter vibrations can lead to formation of spatially localized vibration modes, exhibiting parity-time symmetry breaking.
arXiv Detail & Related papers (2021-06-29T12:45:44Z) - Two-photon resonance fluorescence of two interacting non-identical
quantum emitters [77.34726150561087]
We study a system of two interacting, non-indentical quantum emitters driven by a coherent field.
We show that the features imprinted by the two-photon dynamics into the spectrum of resonance fluorescence are particularly sensitive to changes in the distance between emitters.
This can be exploited for applications such as superresolution imaging of point-like sources.
arXiv Detail & Related papers (2021-06-04T16:13:01Z) - A mechanically stable and tunable cryogenic Fabry-Perot microcavity [0.0]
High-finesse, open-geometry microcavities have recently emerged as a versatile tool for enhancing interactions between photons and material systems.
We present the design and characterization of a system that can achieve $sim$16 pm-rms passive mechanical stability between two high-finesse mirrors.
Our results facilitate operation of a tunable, high-finesse cavity within a closed-cycle cryostat, representing an enabling technology for cavity coupling to a variety of solid-state systems.
arXiv Detail & Related papers (2021-03-05T17:32:12Z) - Microwave multiphoton conversion via coherently driven permanent dipole
systems [68.8204255655161]
We investigate a leaking single-mode quantized cavity field coupled with a resonantly driven two-level system possessing permanent dipoles.
The frequencies of the interacting subsystems are being considered very different, e.g., microwave ranges for the cavity and optical domains for the frequency of the two-level emitter, respectively.
arXiv Detail & Related papers (2020-08-12T16:20:44Z)
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.