Nonclassical correlated optical multistability at low photon level for
cavity electromagnetically induced transparency
- URL: http://arxiv.org/abs/2212.03402v1
- Date: Wed, 7 Dec 2022 01:57:43 GMT
- Title: Nonclassical correlated optical multistability at low photon level for
cavity electromagnetically induced transparency
- Authors: Jing Tang and Yuangang Deng
- Abstract summary: We study the nonequilibrium dynamic behaviors in a driven-dissipative single-atom cavity electromagnetically induced transparency.
We show that the nonequilibrium dynamical phase transition between bistability and multistability is highly tunable by the system parameters.
- Score: 3.230778132936486
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We study the nonequilibrium dynamic behaviors in a driven-dissipative
single-atom cavity electromagnetically induced transparency. The optical
bistability and multistability beyond a Kerr nonlinearity are observed
utilizing the optical Stark shift induced strong nonlinearity. We show that the
nonequilibrium dynamical phase transition between bistability and
multistability is highly tunable by the system parameters in a large parameter
region. The first-order dissipative optical bistability (multistability) always
corresponds to the photon-bunching quantum statistics, which indicates that the
quantum fluctuations and correlations play important roles in nonequilibrium
dynamics.Interestingly, bistability and multistability with photon-bunching
quantum statistics occurring at extremely low steady-state cavity photon number
are observed, even under a very strong cavity driven field. Furthermore, we
demonstrate that the unique cavity steady-state solution of the full quantum
calculation is excellently consistent with the lowest solution based on the
semiclassical mean-field approach in bistability and multistability regimes
when the cavity photon number is much less than unity, albeit these
nonclassical quantum states should possess strong quantum fluctuations in this
parameter regime. Our results pave the way to exploring nonclassical correlated
optical multistability in quantum regime, which may bring exciting
opportunities for potential applications from quantum information processing to
quantum metrology.
Related papers
- How single-photon nonlinearity is quenched with multiple quantum
emitters: Quantum Zeno effect in collective interactions with $\Lambda$-level
atoms [49.1574468325115]
We show that the single-photon nonlinearity vanishes with the number of emitters.
The mechanism behind this behavior is the quantum Zeno effect, manifested in the slowdown of the photon-controlled dynamics.
arXiv Detail & Related papers (2024-01-13T06:55:18Z) - All-optical modulation with single-photons using electron avalanche [69.65384453064829]
We demonstrate all-optical modulation using a beam with single-photon intensity.
Our approach opens up the possibility of terahertz-speed optical switching at the single-photon level.
arXiv Detail & Related papers (2023-12-18T20:14:15Z) - Ultrastrong light-matter interaction in a multimode photonic crystal [0.1588748438612071]
We show that the transport of a single photon becomes a many-body problem, owing to the strong participation of multi-photon bound states.
This work opens exciting prospects for exploring nonlinear quantum optics at the single-photon level.
arXiv Detail & Related papers (2022-09-29T17:43:25Z) - Ultra-long photonic quantum walks via spin-orbit metasurfaces [52.77024349608834]
We report ultra-long photonic quantum walks across several hundred optical modes, obtained by propagating a light beam through very few closely-stacked liquid-crystal metasurfaces.
With this setup we engineer quantum walks up to 320 discrete steps, far beyond state-of-the-art experiments.
arXiv Detail & Related papers (2022-03-28T19:37:08Z) - Exact bistability and time pseudo-crystallization of driven-dissipative
fermionic lattices [0.0]
We prove bistability in precisely the quantum fluctuations.
Surprisingly, rather than destroying bistability, the quantum fluctuations themselves exhibit bistability.
Our work provides to the best of our knowledge the first example of a provably bistable quantum optical system.
arXiv Detail & Related papers (2022-02-18T19:00:00Z) - Multiphoton Quantum van Cittert-Zernike Theorem [0.0]
We introduce the quantum van Cittert-Zernike theorem to describe the scattering and interference effects of propagating multiphoton systems.
We show that conditional measurements may enable the all-optical preparation of multiphoton systems with attenuated quantum statistics below the shot-noise limit.
arXiv Detail & Related papers (2022-02-15T01:14:49Z) - Classical-to-quantum transition in multimode nonlinear systems with
strong photon-photon coupling [12.067269037074292]
We investigate the classical-to-quantum transition of such photonic nonlinear systems using the quantum cluster-expansion method.
This work presents a universal tool to study quantum dynamics of multimode systems and explore the nonlinear photonic devices for continuous-variable quantum information processing.
arXiv Detail & Related papers (2021-11-18T07:26:57Z) - Topologically Protecting Squeezed Light on a Photonic Chip [58.71663911863411]
Integrated photonics offers an elegant way to increase the nonlinearity by confining light strictly inside the waveguide.
We experimentally demonstrate the topologically protected nonlinear process of spontaneous four-wave mixing enabling the generation of squeezed light on a silica chip.
arXiv Detail & Related papers (2021-06-14T13:39:46Z) - Inelastic scattering of a photon by a quantum phase-slip [0.0]
We show that a quantum phase-slip fluctuation in high-impedance superconducting waveguides can split a single microwave photon into a large number of lower-energy photons.
The measured decay rates are explained without adjustable parameters in the framework of a new model of a quantum impurity in a Luttinger liquid.
arXiv Detail & Related papers (2020-10-05T15:35:21Z) - Optical repumping of resonantly excited quantum emitters in hexagonal
boron nitride [52.77024349608834]
We present an optical co-excitation scheme which uses a weak non-resonant laser to reduce transitions to a dark state and amplify the photoluminescence from quantum emitters in hexagonal boron nitride (hBN)
Our results are important for the deployment of atom-like defects in hBN as reliable building blocks for quantum photonic applications.
arXiv Detail & Related papers (2020-09-11T10:15:22Z) - Hyperentanglement in structured quantum light [50.591267188664666]
Entanglement in high-dimensional quantum systems, where one or more degrees of freedom of light are involved, offers increased information capacities and enables new quantum protocols.
Here, we demonstrate a functional source of high-dimensional, noise-resilient hyperentangled states encoded in time-frequency and vector-vortex structured modes.
We generate highly entangled photon pairs at telecom wavelength that we characterise via two-photon interference and quantum state tomography, achieving near-unity visibilities and fidelities.
arXiv Detail & Related papers (2020-06-02T18:00:04Z)
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.