Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime

We show the excitation of a nonlinear ion-wake mode by plasma electron modes in the bubble regime driven by intense energy sources, using analytical theory and simulations. The ion wake is shown to be a driven nonlinear ion-acoustic wave in the form of a long-lived cylindrical ion soliton which limi...

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Main Author: Aakash A. Sahai
Format: Article
Language:English
Published: American Physical Society 2017-08-01
Series:Physical Review Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevAccelBeams.20.081004
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spelling doaj-fb6365b1ddcf46e3800622baaeccc42d2020-11-24T21:08:16ZengAmerican Physical SocietyPhysical Review Accelerators and Beams2469-98882017-08-0120808100410.1103/PhysRevAccelBeams.20.081004Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regimeAakash A. SahaiWe show the excitation of a nonlinear ion-wake mode by plasma electron modes in the bubble regime driven by intense energy sources, using analytical theory and simulations. The ion wake is shown to be a driven nonlinear ion-acoustic wave in the form of a long-lived cylindrical ion soliton which limits the repetition rate of a plasma-based particle accelerator in the bubble regime. We present the application of this evacuated and radially outwards propagating ion-wake channel with an electron skin-depth scale radius for the “crunch-in” regime of hollow-channel plasma. It is shown that the time-asymmetric focusing force phases in the bubble couple to ion motion significantly differently than in the linear electron mode. The electron compression in the back of the bubble sucks in the ions whereas the space charge within the bubble cavity expels them, driving a cylindrical ion-soliton structure at the bubble radius. Once formed, the soliton is sustained and driven radially outwards by the thermal pressure of the wake energy in electrons. Particle-in-cell simulations are used to study the ion-wake soliton structure, its driven propagation and its use for positron acceleration in the crunch-in regime.http://doi.org/10.1103/PhysRevAccelBeams.20.081004
collection DOAJ
language English
format Article
sources DOAJ
author Aakash A. Sahai
spellingShingle Aakash A. Sahai
Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
Physical Review Accelerators and Beams
author_facet Aakash A. Sahai
author_sort Aakash A. Sahai
title Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
title_short Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
title_full Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
title_fullStr Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
title_full_unstemmed Excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
title_sort excitation of a nonlinear plasma ion wake by intense energy sources with applications to the crunch-in regime
publisher American Physical Society
series Physical Review Accelerators and Beams
issn 2469-9888
publishDate 2017-08-01
description We show the excitation of a nonlinear ion-wake mode by plasma electron modes in the bubble regime driven by intense energy sources, using analytical theory and simulations. The ion wake is shown to be a driven nonlinear ion-acoustic wave in the form of a long-lived cylindrical ion soliton which limits the repetition rate of a plasma-based particle accelerator in the bubble regime. We present the application of this evacuated and radially outwards propagating ion-wake channel with an electron skin-depth scale radius for the “crunch-in” regime of hollow-channel plasma. It is shown that the time-asymmetric focusing force phases in the bubble couple to ion motion significantly differently than in the linear electron mode. The electron compression in the back of the bubble sucks in the ions whereas the space charge within the bubble cavity expels them, driving a cylindrical ion-soliton structure at the bubble radius. Once formed, the soliton is sustained and driven radially outwards by the thermal pressure of the wake energy in electrons. Particle-in-cell simulations are used to study the ion-wake soliton structure, its driven propagation and its use for positron acceleration in the crunch-in regime.
url http://doi.org/10.1103/PhysRevAccelBeams.20.081004
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