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Vacuum birefringence by Compton backscattering through a strong field

We propose a novel scheme to measure nonlinear effects in electrodynamics arising from QED corrections. Our theoretical starting point is the Heisenberg-Euler-Schwinger effective Lagrangian which predicts that a vacuum with a strong static electromagnetic field turns birefringent. We propose to empl...

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Detalles Bibliográficos
Autores principales: Wistisen, Tobias N, Uggerhøj, Ulrik I
Lenguaje:eng
Publicado: 2013
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.88.053009
http://cds.cern.ch/record/2310087
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author Wistisen, Tobias N
Uggerhøj, Ulrik I
author_facet Wistisen, Tobias N
Uggerhøj, Ulrik I
author_sort Wistisen, Tobias N
collection CERN
description We propose a novel scheme to measure nonlinear effects in electrodynamics arising from QED corrections. Our theoretical starting point is the Heisenberg-Euler-Schwinger effective Lagrangian which predicts that a vacuum with a strong static electromagnetic field turns birefringent. We propose to employ a pulsed laser to create Compton backscattered photons off a high energy electron beam. These photons will pass through a strong static magnetic field, which according to the QED prediction changes the state of polarization of the radiation—an effect proportional to the photon energy. This change will be measured by using an aligned single crystal, since a large difference in the pair production cross sections at high energies can be achieved with proper orientation of the crystal. As an example we will consider the machine, LHeC, under consideration at CERN as the source of these electrons, and an LHC dipole magnet as the source of the strong static magnetic field. In the proposed experimental setup the birefringence effect will be manifested in a difference in the number of pairs created in the polarizer crystal as the initial laser light has a varying state of polarization, achieved with a rotating quarter wave plate. This will be seen as a clear peak in the Fourier transform spectrum of the pair-production rate signal, which can be obtained with 3 hours of measurement. We also comment on the sensitivity of the experiment, to the existence of an axion, a hypothetical spin-0 particle that couples to two photons.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2013
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spelling oai-inspirehep.net-12891542019-09-30T06:29:59Zdoi:10.1103/PhysRevD.88.053009http://cds.cern.ch/record/2310087engWistisen, Tobias NUggerhøj, Ulrik IVacuum birefringence by Compton backscattering through a strong fieldParticle Physics - TheoryWe propose a novel scheme to measure nonlinear effects in electrodynamics arising from QED corrections. Our theoretical starting point is the Heisenberg-Euler-Schwinger effective Lagrangian which predicts that a vacuum with a strong static electromagnetic field turns birefringent. We propose to employ a pulsed laser to create Compton backscattered photons off a high energy electron beam. These photons will pass through a strong static magnetic field, which according to the QED prediction changes the state of polarization of the radiation—an effect proportional to the photon energy. This change will be measured by using an aligned single crystal, since a large difference in the pair production cross sections at high energies can be achieved with proper orientation of the crystal. As an example we will consider the machine, LHeC, under consideration at CERN as the source of these electrons, and an LHC dipole magnet as the source of the strong static magnetic field. In the proposed experimental setup the birefringence effect will be manifested in a difference in the number of pairs created in the polarizer crystal as the initial laser light has a varying state of polarization, achieved with a rotating quarter wave plate. This will be seen as a clear peak in the Fourier transform spectrum of the pair-production rate signal, which can be obtained with 3 hours of measurement. We also comment on the sensitivity of the experiment, to the existence of an axion, a hypothetical spin-0 particle that couples to two photons.oai:inspirehep.net:12891542013
spellingShingle Particle Physics - Theory
Wistisen, Tobias N
Uggerhøj, Ulrik I
Vacuum birefringence by Compton backscattering through a strong field
title Vacuum birefringence by Compton backscattering through a strong field
title_full Vacuum birefringence by Compton backscattering through a strong field
title_fullStr Vacuum birefringence by Compton backscattering through a strong field
title_full_unstemmed Vacuum birefringence by Compton backscattering through a strong field
title_short Vacuum birefringence by Compton backscattering through a strong field
title_sort vacuum birefringence by compton backscattering through a strong field
topic Particle Physics - Theory
url https://dx.doi.org/10.1103/PhysRevD.88.053009
http://cds.cern.ch/record/2310087
work_keys_str_mv AT wistisentobiasn vacuumbirefringencebycomptonbackscatteringthroughastrongfield
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