Published October 30, 2015 | Version v1
Report Restricted

Electrons laser wakefield acceleration: analytic modelling of the Blowout regime for a magnetized plasma

Description

An intense laser pulse propagating in an under dense plasma (ne ≤ 1018 W.cm-2) and short(τ0 ≤ 100 fs), the bubble regime is reached. Within the bubble the electric field can exceed 100 GV/m and a trapped electron beam is accelerated to GeV energy with few centimetres of plasma. In this regime, the electrons expelled by the laser ponderomotive force are brought back and form a dense sheath layer. First, an analytic model was derived using W. Lu and S. Yi formalisms in order to investigate the properties of the wakefield in the blowout regime. In a second part, the trapping and injection mechanisms into the wakefield were studied. When the optical injection scheme is used, electrons may undergo stochastic heating or cold injection depending on the lasers' polarizations. A similarity parameter was introduced to find out the most appropriate method to maximise the trapped charge. In a third part, our analytic model is extended to investigate the influence of an initially applied longitudinal magnetic field on the laser wakefield in the bubble regime. When the plasma is magnetized two remarkable phenomena occur. Firstly the bubble is opened at its rear, and secondly the longitudinal magnetic field is amplified - at the rear of the bubble - due to the azimuthal current induced by the variation of the magnetic flux. The predictions of our analytic model were shown to be in agreement with 3D PIC simulation results obtained with Calder-Circ. In most situations the wake shape is altered and self-injection can be reduced or even cancelled by the applied magnetic field. However, the application of a longitudinal magnetic field, combined with a careful choice of laser-plasma parameters, reduces the energy spread of the electron beam produced after optical injection. (author)

Abstract (French)

Une impulsion laser intense se propageant dans un plasma sous-dense (ne ≤ 1018 W.cm-2) et de duree tres courte (τ0 ≤ 100 fs), on atteint le regime de la bulle. Les champs electriques dans ces bulles, de l'ordre de 100 GV/m, peuvent accelerer un faisceau d'electrons jusqu'au GeV sur des distances de l'ordre du centimetre. Dans ce regime, les electrons expulses par la force ponderomotrice du laser forment une fine et dense couche a la surface d'une cavite d'ions restes immobiles. Les proprietes de ce regime sont examinees par l'intermediaire d'un modele analytique, que nous avons developpe en nous inspirant du travail de W. Lu et S. Yi. En nous placant dans ce regime prometteur, nous avons etudie les mecanismes d'injection et de piegeage dans l'onde de sillage. Dans l'injection optique, les polarisations paralleles ou circulaires positives conduisent respectivement a une injection mettant en jeu du chauffage stochastique, ou a l'injection froide. Un parametre de similarite est introduit, celui-ci permet de determiner la methode d'injection la plus appropriee pour maximiser la charge injectee. Enfin, le modele analytique presente en premiere partie est etendu afin d'etudier l'onde de sillage dans le regime de la bulle lorsqu'un champ magnetique longitudinal initial est applique au plasma. Lorsque le plasma est magnetise deux phenomenes remarquables se manifestent, d'une part une ouverture apparait a l'arriere de la bulle et d'autre part un mecanisme d'amplification du champ magnetique longitudinale est induit par la variation du flux magnetique. Les predictions de notre modele analytique sont confrontees aux resultats de simulations PIC 3D issues du code CALDER-Circ. La consequence immediate de la deformation de l'onde de sillage est la reduction, voire la suppression de l'auto-injection. L'application d'un champ magnetique longitudinal, combinee a un choix judicieux des parametres laser-plasma, permet de reduire la dispersion en energie des faisceaux d'electrons produits apres injection optique. (l'auteur)

Files

Restricted

The record is publicly accessible, but files are restricted to users with access.

Additional details

Additional titles

Original title (French)
Acceleration d'electrons par onde de sillage laser: developpement d'un modele analytique etendu au cas d'un plasma magnetise dans le regime du Blowout

Publishing Information

Imprint Pagination
239 p.
Report number
FRCEA-TH--10398

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
50053614
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Resource subtype / Literary indicator
Thesis
Descriptors DEI
BUBBLES; COMPUTERIZED SIMULATION; HEATING; MAGNETIC FIELDS; MAGNETIC FLUX; MAGNETIZATION; PLASMA; WAKEFIELD ACCELERATORS
Descriptors DEC
ACCELERATORS; LINEAR ACCELERATORS; SIMULATION

Optional Information

Notes
82 refs.; Available from the INIS Liaison Officer for France, see the INIS website for current contact and E-mail addresses