Self-modulation of a strong electromagnetic wave in a positron-electron plasma induced by relativistic temperatures and phonon damping
Author
dc.contributor.author
Gratton, F. T.
Author
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Gnavi, G.
Author
dc.contributor.author
Galvão, R. M.O.
Author
dc.contributor.author
Gomberoff, L.
Admission date
dc.date.accessioned
2019-01-29T15:32:13Z
Available date
dc.date.available
2019-01-29T15:32:13Z
Publication date
dc.date.issued
1997
Cita de ítem
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Physical Review E - Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics, Volumen 55, Issue 3, 2018, Pages 3381-3392
Identifier
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1063651X
Identifier
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10.1103/PhysRevE.55.3381
Identifier
dc.identifier.uri
https://repositorio.uchile.cl/handle/2250/161586
Abstract
dc.description.abstract
The modulational instability of a linearly polarized, strong, electromagnetic wave in a (unmagnetized) positron-electron plasma is analyzed using relativistic two-fluid hydrodynamics to properly account for physical regimes of very high temperatures. The effect of phonon damping is also included in the treatment. The theory can be reduced to a pair of extended Zakharov equations. The envelope modulation is then studied by deriving the corresponding nonlinear Schrödinger (NLS) equation, using multiscale perturbation analysis. According to the intensity of the damping three different types of NLS are obtained. The main results are (a) that relativistic temperatures modify the stability result found in the literature for low temperature, zero damping, [formula presented] -[formula presented] plasmas, and (b) that phonon damping also produces substantial changes in the NLS, which then predict unstable envelopes. This work extends previous analyses, showing that if the phonon damping is O([