Negative cavity photon spectral function in an optomechanical system
with two parametrically-driven mechanical modes
- URL: http://arxiv.org/abs/2205.15314v3
- Date: Thu, 28 Sep 2023 20:59:17 GMT
- Title: Negative cavity photon spectral function in an optomechanical system
with two parametrically-driven mechanical modes
- Authors: Ali Motazedifard, A. Dalafi and M. H. Naderi
- Abstract summary: We propose an experimentally feasible optomechanical scheme to realize a negative cavity photon spectral function (CPSF)
We find that the presence of two modulated mechanical degrees of freedom provides more controllability over the magnitude and bandwidth of CPSF.
- Score: 0.0
- License: http://creativecommons.org/publicdomain/zero/1.0/
- Abstract: We propose an experimentally feasible optomechanical scheme to realize a
negative cavity photon spectral function (CPSF) which is equivalent to a
negative absorption. The system under consideration is an optomechanical system
consisting of two mechanical (phononic) modes which are linearly coupled to a
common cavity mode via the radiation pressure while parametrically driven
through the coherent time-modulation of their spring coefficients. Using the
equations of motion for the cavity retarded Green's function obtained in the
framework of the generalized linear response theory, we show that in the
red-detuned and weak-coupling regimes a frequency-dependent effective cavity
damping rate (ECDR) corresponding to a negative CPSF can be realized by
controlling the cooperativities and modulation parameters while the system
still remains in the stable regime. Nevertheless, such a negativity which acts
as an optomechanical gain never occurs in a standard (an unmodulated bare)
cavity optomechanical system. Besides, we find that the presence of two
modulated mechanical degrees of freedom provides more controllability over the
magnitude and bandwidth of the negativity of CPSF, in comparison to the setup
with a single modulated mechanical oscillator. Interestingly, the introduced
negativity may open a new platform to realize an extraordinary (modified)
optomechanically induced transparency (in which the input signal is amplified
in the output) leading to a perfect tunable optomechanical filter with
switchable bandwidth which can be used as an optical transistor.
Related papers
- Broadband Multidimensional Variational Measurement with Non-Symmetric Coupling [41.94295877935867]
We analyze a general case of the non-symmetric measurement scheme, in which the coupling strengths with the light modes are not equal to each other.
We found that the back action can be completely excluded from the measurement result in the case of the asymmetric system.
arXiv Detail & Related papers (2024-07-30T11:12:13Z) - Dissipative and dispersive cavity optomechanics with a
frequency-dependent mirror [0.0]
microcavity-based optomechanical systems are placed in the unresolved-sideband regime, preventing sideband-based ground-state cooling.
We analyze such an optomechanical system, whereby one of the mirrors is strongly frequency-dependent, i.e., a suspended Fano mirror.
We formulate a quantum-coupled-mode description that includes both the standard dispersive optomechanical coupling as well as dissipative coupling.
arXiv Detail & Related papers (2023-11-26T14:20:25Z) - 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) - Dispersive Non-reciprocity between a Qubit and a Cavity [24.911532779175175]
We present an experimental study of a non-reciprocal dispersive-type interaction between a transmon qubit and a superconducting cavity.
We show that the qubit-cavity dynamics is well-described in a wide parameter regime by a simple non-reciprocal master-equation model.
arXiv Detail & Related papers (2023-07-07T17:19:18Z) - 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) - Optomechanical compensatory cooling mechanism with exceptional points [4.157445140950159]
We propose a new compensatory cooling mechanism for Brillouin scattering optomechanical system with exceptional points (EPs)
By using the EPs both in optical and mechanical modes, the limited cooling process is compensated effectively.
Our results provide new tools to manipulate the optomechanical interaction in multi-mode systems and open the possibility of quantum state transfer and quantum interface protocols based on phonon cooling in quantum applications.
arXiv Detail & Related papers (2022-09-07T11:08:12Z) - Controlling mode orientations and frequencies in levitated cavity
optomechanics [0.0]
coherent-scattering (CS) set-up allows quantum ground state cooling of a levitated nanoparticles.
We demonstrate experimentally that it is possible to strongly cavity cool and control the em unperturbed modes.
Findings have implications for directional force sensing using CS set-ups.
arXiv Detail & Related papers (2022-04-20T17:07:31Z) - Coherent noise cancellation in optomechanical system with double optical
modes [0.0]
coherent quantum noise cancellation (CQNC) has been performed in the single-mode optomechanical systems to promote an ultra-sensitive metrology protocol.
In this work, a continuous weak-force sensing under CQNC is developed in a double-mode optomechanical system.
arXiv Detail & Related papers (2020-09-10T07:45:01Z) - 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) - Optimal non-classical correlations of light with a levitated nano-sphere [34.82692226532414]
Nonclassical correlations provide a resource for many applications in quantum technology.
Optomechanical systems can generate nonclassical correlations between the mechanical mode and a mode of travelling light.
We propose automated optimization of the production of quantum correlations in such a system.
arXiv Detail & Related papers (2020-06-26T15:27:47Z) - Optical nonreciprocal response and conversion in a Tavis-Cummings
coupling optomechanical system [4.419156740280762]
We propose a scheme to realize optical nonreciprocal response and conversion in a Tavis-Cummings coupling optomechanical system.
We find that the phases between the mechanical mode and the optical mode, as well as between the mechanical mode and the dopant mode, are correlated with each other.
Compared with the conventional optomechanical systems, the Tavis-Cummings coupling optomechanical system exhibits richer nonreciprocal conversion phenomena.
arXiv Detail & Related papers (2020-06-19T07:20:54Z)
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.