Next Article in Journal
The ELIMAIA Laser–Plasma Ion Accelerator: Technological Commissioning and Perspectives
Next Article in Special Issue
Polarimetric Quantum-Strong Correlations with Independent Photons on the Poincaré Sphere
Previous Article in Journal
Virtual Angstrom-Beam Electron Diffraction Analysis for Zr80Pt20 Metallic Glasses
Previous Article in Special Issue
A Solar-Rechargeable Radiation Dosimeter Design for Radiation Hazard Zone Located with LoRa Network
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Instantaneous Quantum Description of Photonic Wavefronts and Applications

Fibre-Optic Transmission of Canberra, Canberra 2612, Australia
Quantum Beam Sci. 2022, 6(4), 29; https://doi.org/10.3390/qubs6040029
Submission received: 13 July 2022 / Revised: 8 September 2022 / Accepted: 27 September 2022 / Published: 30 September 2022
(This article belongs to the Special Issue Quantum Beam Science: Feature Papers 2022)

Abstract

Three physical elements are missing from the conventional formalism of quantum photonics: (1) the quantum Rayleigh spontaneous and stimulated emissions; (2) the unavoidable parametric amplification; and (3) the mixed time-frequency spectral structure of a photonic field which specifies its duration or spatial extent. As a single photon enters a dielectric medium, the quantum Rayleigh scattering prevents it from propagating in a straight-line, thereby destroying any possible entanglement. A pure dynamic and coherent state composed of two consecutive number states, delivers the correct expectation values for the number of photons carried by a photonic wave front, its complex optical field, and phase quadratures. The intrinsic longitudinal and lateral field profiles associated with a group of photons for any instantaneous number of photons are independent of the source. These photonic properties enable a step-by-step analysis of the correlation functions characterizing counting of coincident numbers of photons or intensities with unity visibility interference, spanning the classical and quantum optic regimes.
Keywords: quantum Rayleigh emissions; spatial fields of photons; photonic beam splitters and filters; photon coincidence counting; HOM dip with unity visibility quantum Rayleigh emissions; spatial fields of photons; photonic beam splitters and filters; photon coincidence counting; HOM dip with unity visibility

Share and Cite

MDPI and ACS Style

Vatarescu, A. Instantaneous Quantum Description of Photonic Wavefronts and Applications. Quantum Beam Sci. 2022, 6, 29. https://doi.org/10.3390/qubs6040029

AMA Style

Vatarescu A. Instantaneous Quantum Description of Photonic Wavefronts and Applications. Quantum Beam Science. 2022; 6(4):29. https://doi.org/10.3390/qubs6040029

Chicago/Turabian Style

Vatarescu, Andre. 2022. "Instantaneous Quantum Description of Photonic Wavefronts and Applications" Quantum Beam Science 6, no. 4: 29. https://doi.org/10.3390/qubs6040029

APA Style

Vatarescu, A. (2022). Instantaneous Quantum Description of Photonic Wavefronts and Applications. Quantum Beam Science, 6(4), 29. https://doi.org/10.3390/qubs6040029

Article Metrics

Back to TopTop