Mechanisms to control laser-plasma coupling in laser wakefield electron acceleration
File(s)PhysRevAccelBeams.25.101301.pdf (1.77 MB)
Published version
Author(s)
Type
Journal Article
Abstract
Experimental results, supported by precise modeling, demonstrate optimization of a plasma-based injector with intermediate laser pulse energy (
<
1
J
), corresponding to a normalized vector potential
a
0
=
2.15
, using ionization injection in a tailored plasma density profile. An increase in electron bunch quality and energy is achieved experimentally with the extension of the density downramp at the plasma exit. Optimization of the focal position of the laser pulse in the tailored plasma density profile is shown to efficiently reduce electron bunch angular deviation, leading to a better alignment of the electron bunch with the laser axis. Single peak electron spectra are produced in a previously unexplored regime by combining an early focal position and adaptive optic control of the laser wavefront by optimizing the symmetry of the prefocal laser energy distribution. Experimental results have been validated through particle-in-cell simulations using realistic laser energy, phase distribution, and temporal envelope, allowing for accurate predictions of difficult to model parameters, such as total charge and spatial properties of the electron bunches, opening the way for more accurate modeling for the design of plasma-based accelerators.
<
1
J
), corresponding to a normalized vector potential
a
0
=
2.15
, using ionization injection in a tailored plasma density profile. An increase in electron bunch quality and energy is achieved experimentally with the extension of the density downramp at the plasma exit. Optimization of the focal position of the laser pulse in the tailored plasma density profile is shown to efficiently reduce electron bunch angular deviation, leading to a better alignment of the electron bunch with the laser axis. Single peak electron spectra are produced in a previously unexplored regime by combining an early focal position and adaptive optic control of the laser wavefront by optimizing the symmetry of the prefocal laser energy distribution. Experimental results have been validated through particle-in-cell simulations using realistic laser energy, phase distribution, and temporal envelope, allowing for accurate predictions of difficult to model parameters, such as total charge and spatial properties of the electron bunches, opening the way for more accurate modeling for the design of plasma-based accelerators.
Date Issued
2022-10-12
Date Acceptance
2022-07-27
Citation
Physical Review Accelerators and Beams, 2022, 25 (10), pp.1-12
ISSN
2469-9888
Publisher
American Physical Society
Start Page
1
End Page
12
Journal / Book Title
Physical Review Accelerators and Beams
Volume
25
Issue
10
Copyright Statement
© 2022 The Author(s). Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.
License URL
Sponsor
Science and Technology Facilities Council (STFC)
EuPRAXIA
Identifier
https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000870866400001&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Grant Number
ST/P002021/1
EuPRAXIA
Subjects
Science & Technology
Physical Sciences
Physics, Nuclear
Physics, Particles & Fields
Physics
Publication Status
Published
Article Number
ARTN 101301
Date Publish Online
2022-10-12