Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum

We show that the well-known Čerenkov effect contains new phenomena arising from the quantum nature of charged particles. The Čerenkov transition amplitudes allow coupling between the charged particle and the emitted photon through their orbital angular momentum and spin, by scattering into preferred...

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Main Authors: Ido Kaminer, Maor Mutzafi, Amir Levy, Gal Harari, Hanan Herzig Sheinfux, Scott Skirlo, Jonathan Nemirovsky, John D. Joannopoulos, Mordechai Segev, Marin Soljačić
Format: Article
Language:English
Published: American Physical Society 2016-01-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.6.011006
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spelling doaj-69d75f4f2c9e45ce99a641b38f52aea92020-11-25T01:33:52ZengAmerican Physical SocietyPhysical Review X2160-33082016-01-016101100610.1103/PhysRevX.6.011006Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular MomentumIdo KaminerMaor MutzafiAmir LevyGal HarariHanan Herzig SheinfuxScott SkirloJonathan NemirovskyJohn D. JoannopoulosMordechai SegevMarin SoljačićWe show that the well-known Čerenkov effect contains new phenomena arising from the quantum nature of charged particles. The Čerenkov transition amplitudes allow coupling between the charged particle and the emitted photon through their orbital angular momentum and spin, by scattering into preferred angles and polarizations. Importantly, the spectral response reveals a discontinuity immediately below a frequency cutoff that can occur in the optical region. Near this cutoff, the intensity of the conventional Čerenkov radiation (ČR) is very small but still finite, while our quantum calculation predicts exactly zero intensity above the cutoff. Below that cutoff, with proper shaping of electron beams (ebeams), we predict that the traditional ČR angle splits into two distinctive cones of photonic shockwaves. One of the shockwaves can move along a backward cone, otherwise considered impossible for conventional ČR in ordinary matter. Our findings are observable for ebeams with realistic parameters, offering new applications including novel quantum optics sources, and opening a new realm for Čerenkov detectors involving the spin and orbital angular momentum of charged particles.http://doi.org/10.1103/PhysRevX.6.011006
collection DOAJ
language English
format Article
sources DOAJ
author Ido Kaminer
Maor Mutzafi
Amir Levy
Gal Harari
Hanan Herzig Sheinfux
Scott Skirlo
Jonathan Nemirovsky
John D. Joannopoulos
Mordechai Segev
Marin Soljačić
spellingShingle Ido Kaminer
Maor Mutzafi
Amir Levy
Gal Harari
Hanan Herzig Sheinfux
Scott Skirlo
Jonathan Nemirovsky
John D. Joannopoulos
Mordechai Segev
Marin Soljačić
Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
Physical Review X
author_facet Ido Kaminer
Maor Mutzafi
Amir Levy
Gal Harari
Hanan Herzig Sheinfux
Scott Skirlo
Jonathan Nemirovsky
John D. Joannopoulos
Mordechai Segev
Marin Soljačić
author_sort Ido Kaminer
title Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
title_short Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
title_full Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
title_fullStr Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
title_full_unstemmed Quantum Čerenkov Radiation: Spectral Cutoffs and the Role of Spin and Orbital Angular Momentum
title_sort quantum čerenkov radiation: spectral cutoffs and the role of spin and orbital angular momentum
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2016-01-01
description We show that the well-known Čerenkov effect contains new phenomena arising from the quantum nature of charged particles. The Čerenkov transition amplitudes allow coupling between the charged particle and the emitted photon through their orbital angular momentum and spin, by scattering into preferred angles and polarizations. Importantly, the spectral response reveals a discontinuity immediately below a frequency cutoff that can occur in the optical region. Near this cutoff, the intensity of the conventional Čerenkov radiation (ČR) is very small but still finite, while our quantum calculation predicts exactly zero intensity above the cutoff. Below that cutoff, with proper shaping of electron beams (ebeams), we predict that the traditional ČR angle splits into two distinctive cones of photonic shockwaves. One of the shockwaves can move along a backward cone, otherwise considered impossible for conventional ČR in ordinary matter. Our findings are observable for ebeams with realistic parameters, offering new applications including novel quantum optics sources, and opening a new realm for Čerenkov detectors involving the spin and orbital angular momentum of charged particles.
url http://doi.org/10.1103/PhysRevX.6.011006
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