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Experimental investigations of synchrotron radiation at the onset of the quantum regime

The classical description of synchrotron radiation fails at large Lorentz factors, $\gamma$, for relativistic electrons crossing strong transverse magnetic fields $B$. In the rest frame of the electron this field is comparable to the so-called critical field $B_0 = 4.414\cdot10^9$ T. For $\chi = \ga...

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Autores principales: Andersen, K.K., Esberg, J., Knudsen, H., Thomsen, H.D., Uggerhoj, U.I., Sona, P., Mangiarotti, A., Ketel, T.J., Dizdar, A., Ballestrero, S.
Lenguaje:eng
Publicado: 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.86.072001
http://cds.cern.ch/record/1458722
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author Andersen, K.K.
Esberg, J.
Knudsen, H.
Thomsen, H.D.
Uggerhoj, U.I.
Sona, P.
Mangiarotti, A.
Ketel, T.J.
Dizdar, A.
Ballestrero, S.
author_facet Andersen, K.K.
Esberg, J.
Knudsen, H.
Thomsen, H.D.
Uggerhoj, U.I.
Sona, P.
Mangiarotti, A.
Ketel, T.J.
Dizdar, A.
Ballestrero, S.
author_sort Andersen, K.K.
collection CERN
description The classical description of synchrotron radiation fails at large Lorentz factors, $\gamma$, for relativistic electrons crossing strong transverse magnetic fields $B$. In the rest frame of the electron this field is comparable to the so-called critical field $B_0 = 4.414\cdot10^9$ T. For $\chi = \gamma B/B_0 \simeq 1$ quantum corrections are essential for the description of synchrotron radiation to conserve energy. With electrons of energies 10-150 GeV penetrating a germanium single crystal along the $<110>$ axis, we have experimentally investigated the transition from the regime where classical synchrotron radiation is an adequate description, to the regime where the emission drastically changes character; not only in magnitude, but also in spectral shape. The spectrum can only be described by quantum synchrotron radiation formulas. Apart from being a test of strong-field quantum electrodynamics, the experimental results are also relevant for the design of future linear colliders where beamstrahlung - a closely related process - may limit the achievable luminosity.
id cern-1458722
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2012
record_format invenio
spelling cern-14587222019-09-30T06:29:59Zdoi:10.1103/PhysRevD.86.072001http://cds.cern.ch/record/1458722engAndersen, K.K.Esberg, J.Knudsen, H.Thomsen, H.D.Uggerhoj, U.I.Sona, P.Mangiarotti, A.Ketel, T.J.Dizdar, A.Ballestrero, S.Experimental investigations of synchrotron radiation at the onset of the quantum regimeAccelerators and Storage RingsThe classical description of synchrotron radiation fails at large Lorentz factors, $\gamma$, for relativistic electrons crossing strong transverse magnetic fields $B$. In the rest frame of the electron this field is comparable to the so-called critical field $B_0 = 4.414\cdot10^9$ T. For $\chi = \gamma B/B_0 \simeq 1$ quantum corrections are essential for the description of synchrotron radiation to conserve energy. With electrons of energies 10-150 GeV penetrating a germanium single crystal along the $<110>$ axis, we have experimentally investigated the transition from the regime where classical synchrotron radiation is an adequate description, to the regime where the emission drastically changes character; not only in magnitude, but also in spectral shape. The spectrum can only be described by quantum synchrotron radiation formulas. Apart from being a test of strong-field quantum electrodynamics, the experimental results are also relevant for the design of future linear colliders where beamstrahlung - a closely related process - may limit the achievable luminosity.The classical description of synchrotron radiation fails at large Lorentz factors, $\gamma$, for relativistic electrons crossing strong transverse magnetic fields $B$. In the rest frame of the electron this field is comparable to the so-called critical field $B_0 = 4.414\cdot10^9$ T. For $\chi = \gamma B/B_0 \simeq 1$ quantum corrections are essential for the description of synchrotron radiation to conserve energy. With electrons of energies 10-150 GeV penetrating a germanium single crystal along the $<110>$ axis, we have experimentally investigated the transition from the regime where classical synchrotron radiation is an adequate description, to the regime where the emission drastically changes character/ not only in magnitude, but also in spectral shape. The spectrum can only be described by quantum synchrotron radiation formulas. Apart from being a test of strong-field quantum electrodynamics, the experimental results are also relevant for the design of future linear colliders where beamstrahlung - a closely related process - may limit the achievable luminosity.arXiv:1206.6577oai:cds.cern.ch:14587222012-06-29
spellingShingle Accelerators and Storage Rings
Andersen, K.K.
Esberg, J.
Knudsen, H.
Thomsen, H.D.
Uggerhoj, U.I.
Sona, P.
Mangiarotti, A.
Ketel, T.J.
Dizdar, A.
Ballestrero, S.
Experimental investigations of synchrotron radiation at the onset of the quantum regime
title Experimental investigations of synchrotron radiation at the onset of the quantum regime
title_full Experimental investigations of synchrotron radiation at the onset of the quantum regime
title_fullStr Experimental investigations of synchrotron radiation at the onset of the quantum regime
title_full_unstemmed Experimental investigations of synchrotron radiation at the onset of the quantum regime
title_short Experimental investigations of synchrotron radiation at the onset of the quantum regime
title_sort experimental investigations of synchrotron radiation at the onset of the quantum regime
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevD.86.072001
http://cds.cern.ch/record/1458722
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