Cargando…

Study of laser plasma interactions in the relativistic regime

We discuss the first experimental demonstration of electron acceleration by a laser wakefield over instances greater than a Rayleigh range (or the distance a laser normally propagates in vacuum). A self-modulated laser wakefield plasma wave is shown to have a field gradient that exceeds that of an R...

Descripción completa

Detalles Bibliográficos
Autor principal: Umstadter, D
Lenguaje:eng
Publicado: 1997
Materias:
Acceso en línea:http://cds.cern.ch/record/748234
_version_ 1780904233995862016
author Umstadter, D
author_facet Umstadter, D
author_sort Umstadter, D
collection CERN
description We discuss the first experimental demonstration of electron acceleration by a laser wakefield over instances greater than a Rayleigh range (or the distance a laser normally propagates in vacuum). A self-modulated laser wakefield plasma wave is shown to have a field gradient that exceeds that of an RF linac by four orders of magnitude (E => 200 GV/m) and accelerates electrons with over 1-nC of charge per bunch in a beam with space-charge-limited emittance (1 mm-mrad). Above a laser power threshold, a plasma channel, created by the intense ultrashort laser pulse (I approx. 4 x1018 W/CM2, gamma = 1 micron, r = 400 fs), was found to increase the laser propagation distance, decrease the electron beam divergence, and increase the electron energy. The plasma wave, directly measured with coherent Thomson scattering is shown to damp-due to beam loading-in a duration of 1.5 ps or approx. 100 plasma periods. These results may have important implications for the proposed fast ignitor concept.
id cern-748234
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1997
record_format invenio
spelling cern-7482342019-09-30T06:29:59Zhttp://cds.cern.ch/record/748234engUmstadter, DStudy of laser plasma interactions in the relativistic regimeAccelerators and Storage RingsWe discuss the first experimental demonstration of electron acceleration by a laser wakefield over instances greater than a Rayleigh range (or the distance a laser normally propagates in vacuum). A self-modulated laser wakefield plasma wave is shown to have a field gradient that exceeds that of an RF linac by four orders of magnitude (E => 200 GV/m) and accelerates electrons with over 1-nC of charge per bunch in a beam with space-charge-limited emittance (1 mm-mrad). Above a laser power threshold, a plasma channel, created by the intense ultrashort laser pulse (I approx. 4 x1018 W/CM2, gamma = 1 micron, r = 400 fs), was found to increase the laser propagation distance, decrease the electron beam divergence, and increase the electron energy. The plasma wave, directly measured with coherent Thomson scattering is shown to damp-due to beam loading-in a duration of 1.5 ps or approx. 100 plasma periods. These results may have important implications for the proposed fast ignitor concept.oai:cds.cern.ch:7482341997-08-13
spellingShingle Accelerators and Storage Rings
Umstadter, D
Study of laser plasma interactions in the relativistic regime
title Study of laser plasma interactions in the relativistic regime
title_full Study of laser plasma interactions in the relativistic regime
title_fullStr Study of laser plasma interactions in the relativistic regime
title_full_unstemmed Study of laser plasma interactions in the relativistic regime
title_short Study of laser plasma interactions in the relativistic regime
title_sort study of laser plasma interactions in the relativistic regime
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/748234
work_keys_str_mv AT umstadterd studyoflaserplasmainteractionsintherelativisticregime