Quantum structured light: Non-classical spin texture of twisted
single-photon pulses
- URL: http://arxiv.org/abs/2102.13248v3
- Date: Tue, 4 May 2021 00:21:59 GMT
- Title: Quantum structured light: Non-classical spin texture of twisted
single-photon pulses
- Authors: Li-Ping Yang and Zubin Jacob
- Abstract summary: A framework for the quantum density of spin and OAM for single-photons remains elusive.
We develop a theoretical framework and put forth the concept of quantum structured light for space-time wavepackets at the single-photon level.
Our work paves the way for quantum spin-OAM physics in twisted single photon pulses.
- Score: 8.19841678851784
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Classical structured light with controlled polarization and orbital angular
momentum (OAM) of electromagnetic waves has varied applications in optical
trapping, bio-sensing, optical communications and quantum simulations. The
classical electromagnetic theory of such structured light beams and pulses have
advanced significantly over the last two decades. However, a framework for the
quantum density of spin and OAM for single-photons remains elusive. Here, we
develop a theoretical framework and put forth the concept of quantum structured
light for space-time wavepackets at the single-photon level. Our work marks a
paradigm shift beyond scalar-field theory as well as the paraxial approximation
and can be utilized to study the quantum properties of the spin and OAM of all
classes of twisted quantum light pulses. We capture the uncertainty in full
three-dimensional (3D) projections of vector spin demonstrating their quantum
behavior beyond the conventional concept of classical polarization. Even in
laser beams with high OAM along the propagation direction, we predict the
existence of large OAM quantum fluctuations in the transverse plane which can
be verified experimentally. We show that the spin density generates modulated
helical texture beyond the paraxial limit and exhibits distinct statistics for
Fock-state vs. coherent-state twisted pulses. We introduce the quantum
correlator of photon spin density to characterize the nonlocal spin noise
providing a rigorous parallel with fermionic spin noise operators. Our work
paves the way for quantum spin-OAM physics in twisted single photon pulses and
also opens explorations for new phases of light with long-range spin order.
Related papers
- Nonlinear dynamical Casimir effect and Unruh entanglement in waveguide QED with parametrically modulated coupling [83.88591755871734]
We study theoretically an array of two-level qubits moving relative to a one-dimensional waveguide.
When the frequency of this motion approaches twice the qubit resonance frequency, it induces parametric generation of photons and excitation of the qubits.
We develop a comprehensive general theoretical framework that incorporates both perturbative diagrammatic techniques and a rigorous master-equation approach.
arXiv Detail & Related papers (2024-08-30T15:54:33Z) - Quantum theory of orbital angular momentum in spatiotemporal optical vortices [0.0]
STOVs are structured electromagnetic fields propagating in free space with phase singularities in the space-time domain.
We develop a quantum theory for STOVs with an arbitrary tilt, extending beyond the paraxial limit.
Our findings represent a step towards the exploitation of quantum effects of structured light for various applications.
arXiv Detail & Related papers (2024-03-02T01:03:00Z) - Quantum Multiphoton Rabi Oscillations in Waveguide QED [0.0]
Future of quantum information processing hinges on chip-scale nanophotonics, specifically cavity QED and waveguide QED.
One of the foremost processes underpinning quantum photonic technologies is the phenomenon of Rabi oscillations.
We analytically explore the scattering dynamics of the photonic Fock state as it interfaces with a two-level emitter.
arXiv Detail & Related papers (2023-10-24T00:03:38Z) - Deterministic photon source of genuine three-qubit entanglement [4.416507176974232]
A single quantum emitter embedded in a photonic resonator or waveguide may be triggered to emit one photon at a time into a desired optical mode.
By coherently controlling a single spin in the emitter, multi-photon entanglement can be realized.
arXiv Detail & Related papers (2023-10-18T15:22:36Z) - Quantum vortices of strongly interacting photons [52.131490211964014]
Vortices are hallmark of nontrivial dynamics in nonlinear physics.
We report on the realization of quantum vortices resulting from a strong photon-photon interaction in a quantum nonlinear optical medium.
For three photons, the formation of vortex lines and a central vortex ring attests to a genuine three-photon interaction.
arXiv Detail & Related papers (2023-02-12T18:11:04Z) - Tunable photon-mediated interactions between spin-1 systems [68.8204255655161]
We show how to harness multi-level emitters with several optical transitions to engineer photon-mediated interactions between effective spin-1 systems.
Our results expand the quantum simulation toolbox available in cavity QED and quantum nanophotonic setups.
arXiv Detail & Related papers (2022-06-03T14:52:34Z) - Energy-efficient quantum non-demolition measurement with a spin-photon
interface [0.0]
We study the potential of a SPI for quantum non demolition (QND) measurements of a spin state.
We show that quantum superpositions of zero and single photon states outperform coherent pulses of light.
The proposed schemes are robust against imperfections in state of the art semi-conducting devices.
arXiv Detail & Related papers (2022-05-19T15:38:18Z) - 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) - Self-Ordering of Individual Photons in Waveguide QED and Rydberg-Atom
Arrays [0.548253258922555]
We study the propagation of light through an optical waveguide that is chirally coupled to three-level quantum emitters.
We show that the additional laser-coupling to a third emitter state not only permits to control the properties of the bound state but can even eliminate it entirely.
We demonstrate this emerging photon-photon repulsion by analysing the quantum dynamics of multiple photons in large emitter arrays.
arXiv Detail & Related papers (2021-10-25T13:55:10Z) - 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) - Theory of waveguide-QED with moving emitters [68.8204255655161]
We study a system composed by a waveguide and a moving quantum emitter in the single excitation subspace.
We first characterize single-photon scattering off a single moving quantum emitter, showing both nonreciprocal transmission and recoil-induced reduction of the quantum emitter motional energy.
arXiv Detail & Related papers (2020-03-20T12:14:10Z)
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.