Photonic Spin Hall Effect using bilayer Graphene in Nano Optomechanical Cavities
- URL: http://arxiv.org/abs/2509.14346v1
- Date: Wed, 17 Sep 2025 18:22:47 GMT
- Title: Photonic Spin Hall Effect using bilayer Graphene in Nano Optomechanical Cavities
- Authors: Muqaddar Abbas, Muhammad Awais Altaf, Pei Zhang, Muhammad Waseem,
- Abstract summary: We propose a theoretical model to obtain the photonic spin Hall effect (SHE) in an optomechanical nanocavity using a graphene bilayer as the intracavity medium.<n>In our model, the pump and probe fields coherently drive the first mirror, whereas the second mirror has mechanical oscillation due to the radiation pressure.
- Score: 4.5049819897048256
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We propose a theoretical model to obtain the photonic spin Hall effect (SHE) in an optomechanical nanocavity using a graphene bilayer as the intracavity medium. In our model, the pump and probe fields coherently drive the first mirror, whereas the second mirror has mechanical oscillation due to the radiation pressure. We show that the right- and left-circular polarization components of the Gaussian probe field striking at an arbitrary incident angle become spatially separate along a direction orthogonal to the plane of incidence. Photonic SHE can be coherently controlled by adjusting the optomechanical interaction, cavity field and G-mode phonon coupling, as well as G-mode phonon and electronic state interaction. The findings of photonic SHE are equally valid for standard optomechanical systems in the absence of cavity field and G-mode phonon coupling and electronic state interaction. The cavity field and G-mode phonon coupling broadened the detuning range of the probe field to observe the dominant photonic SHE. Adding G-mode phonon and electronic state interaction generates enhanced photonic SHE at three different probe field detunings due to optomechanical-induced transparency being split into three windows. We show that asymmetric photonic SHE can be controlled through cavity field and G-mode phonon coupling and G-mode phonon and electronic state interaction when probe field detuning is non-zero. The photonic SHE in bilayer graphene integrated with an optomechanical cavity may enable further studies of spin-dependent photonic effects and quantum sensing applications.
Related papers
- Coherent Control of the Goos-Hänchen Shift in Polariton Optomechanics [0.0]
We propose a theoretical scheme for controlling the Goos-Hnchen shift (GHS) of a reflected probe field in a polariton optomechanical system.
arXiv Detail & Related papers (2026-01-11T11:51:15Z) - Photonic spin Hall effect in $\mathcal{PT}$-symmetric non-Hermitian cavity magnomechanics [0.0]
Non-Hermitian cavity magnomechanics (CMM) incorporates the magnon-photon and magnon-phonon interactions simultaneously.<n>These interactions exert a pivotal influence on the optical response of a weak probe field and pave the way for novel applications in quantum technologies.
arXiv Detail & Related papers (2025-11-15T11:56:18Z) - Dynamic control of dipole decay rate via graphene plexcitons [1.8925617030516928]
We demonstrate dynamic modulation of dipole's decay rate by exploiting the tunable plexcitonic modes in the strong coupling regime.<n>The plexcitonic peaks shows much sharper linewidths in contrast to bare graphene plasmons even in the off-resonant coupling.<n>Our approach demonstrate a versatile platform for programmable emission control and offer a promising pathway for developing reconfigurable quantum photonic devices.
arXiv Detail & Related papers (2025-10-22T09:15:49Z) - Spin-photon coupling using circular double quantum dots [29.12967812474298]
We analyze a microwave spin-photon interface based on a circular double quantum dot.<n>We show how ring states form at crossings of odd and even geometrical parity orbital states.<n>We show that the system exhibits a second-order charge-noise sweet spot at a specific magnetic field angle.
arXiv Detail & Related papers (2025-09-18T10:13:43Z) - Spin Squeezing with Magnetic Dipoles [37.93140485169168]
Entanglement can improve the measurement precision of quantum sensors beyond the shot noise limit.<n>We take advantage of the magnetic dipole-dipole interaction native to most neutral atoms to realize spin-squeezed states.<n>We achieve 7.1 dB of metrologically useful squeezing using the finite-range spin exchange interactions in an erbium quantum gas microscope.
arXiv Detail & Related papers (2024-11-11T18:42:13Z) - Passive photonic CZ gate with two-level emitters in chiral multi-mode waveguide QED [41.94295877935867]
We design a passive conditional gate between co-propagating photons using an array of only two-level emitters.
The key resource is to harness the effective photon-photon interaction induced by the chiral coupling of the emitter array to two waveguide modes.
We show how to harness this non-linear phase shift to engineer a conditional, deterministic photonic gate in different qubit encodings.
arXiv Detail & Related papers (2024-07-08T18:00:25Z) - Coherent Control of an Optical Quantum Dot Using Phonons and Photons [5.1635749330879905]
We describe unique features and advantages of optical two-level systems, or qubits, for optomechanics.
The qubit state can be coherently controlled using both phonons and resonant or detuned photons.
Time-correlated single-photon counting measurements reveal the control of QD population dynamics.
arXiv Detail & Related papers (2024-04-02T16:25:35Z) - Strong coupling between a single photon and a photon pair [43.14346227009377]
We report an experimental observation of the strong coupling between a single photon and a photon pair in an ultrastrongly-coupled circuit-QED system.
Results represent a key step towards a new regime of quantum nonlinear optics.
arXiv Detail & Related papers (2024-01-05T10:23:14Z) - Highly tunable room-temperature plexcitons in monolayer WSe2
/gap-plasmon nanocavities [0.0]
We realize real-time, room-temperature tunable strong plasmon-exciton coupling in 2D semiconductor monolayers.
We show that the exciton energy and nanocavity plasmon resonance can be controllably toggled in concert by applying pressure with a plasmonic nanoprobe.
arXiv Detail & Related papers (2023-11-04T21:16:46Z) - Multimode Ultrastrong Coupling in Three-Dimensional Photonic-Crystal Cavities [36.212701687134064]
One-dimensional photonic-crystal cavities have uniform spatial profiles in the lateral plane.
Fabrication challenges have hindered the achievement of strong coupling in 3D-PCCs.
We report the realization of multimode ultrastrong coupling in a 3D-PCC at terahertz frequencies.
arXiv Detail & Related papers (2023-08-23T21:14:01Z) - Perspective on real-space nanophotonic field manipulation using
non-perturbative light-matter coupling [0.0]
We develop a theory describing multi-mode light-matter coupling in systems of reduced dimensionality.
We show how the interference between different photonic resonances can modify the real-space shape of the electromagnetic field associated with each polariton mode.
arXiv Detail & Related papers (2022-07-24T08:29:50Z) - Vectorial polaritons in the quantum motion of a levitated nanosphere [0.0]
We show the generation of phonon-polaritons in the quantum motion of an optically-levitated nanosphere.
Our results pave the way to novel protocols for quantum information transfer between photonic and phononic components.
arXiv Detail & Related papers (2020-12-30T18:26:28Z) - Fast electrical modulation of strong near-field interactions between
erbium emitters and graphene [42.60602838972598]
We show fast, all-electrical modulation of the near-field interactions between a nanolayer of erbium emitters and graphene.
We demonstrate strong interactions with a >1,000-fold increased decay rate for 25% of the emitters.
This opens routes to quantum entanglement generation by collective plasmon emission or photon emission with controlled waveform.
arXiv Detail & Related papers (2020-07-22T08:48:01Z)
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.