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Open AccessJournal ArticleDOI

Generating multi-GeV electron bunches using single stage laser wakefield acceleration in a 3D nonlinear regime

TLDR
In this article, a phenomenological framework for laser wakefield acceleration (LWFA) in the 3D nonlinear regime was developed, in which the plasma electrons are expelled by the radiation pressure of a short pulse laser, leading to nearly complete blowout.
Abstract
The extraordinary ability of space-charge waves in plasmas to accelerate charged particles at gradients that are orders of magnitude greater than in current accelerators has been well documented. We develop a phenomenological framework for laser wakefield acceleration (LWFA) in the 3D nonlinear regime, in which the plasma electrons are expelled by the radiation pressure of a short pulse laser, leading to nearly complete blowout. Our theory provides a recipe for designing a LWFA for given laser and plasma parameters and estimates the number and the energy of the accelerated electrons whether self-injected or externally injected. These formulas apply for self-guided as well as externally guided pulses (e.g. by plasma channels). We demonstrate our results by presenting a sample particle-in-cell (PIC) simulation of a $30\text{ }\mathrm{fs}$, 200 TW laser interacting with a 0.75 cm long plasma with density $1.5\ifmmode\times\else\texttimes\fi{}{10}^{18}\text{ }\text{ }{\mathrm{cm}}^{\ensuremath{-}3}$ to produce an ultrashort (10 fs) monoenergetic bunch of self-injected electrons at 1.5 GeV with 0.3 nC of charge. For future higher-energy accelerator applications, we propose a parameter space, which is distinct from that described by Gordienko and Pukhov [Phys. Plasmas 12, 043109 (2005)] in that it involves lower plasma densities and wider spot sizes while keeping the intensity relatively constant. We find that this helps increase the output electron beam energy while keeping the efficiency high.

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Journal ArticleDOI

Efficient simulation of electron trapping in laser and plasma wakefield acceleration

TL;DR: Mora and Antonsen as discussed by the authors modified the two-dimensional quasistatic simulation code WAKE to include the effects of electron trapping and beam loading by introducing a population of beam electrons, which are no longer subject to the quasisistatic approximation.
Journal ArticleDOI

Angular streaking of betatron X-rays in a transverse density gradient laser-wakefield accelerator

TL;DR: An analytical model for the curved trajectory of a laser pulse in a transverse density gradient is presented in this paper, which gives the deflection angle of the electron beam and the betatron X-rays as a function of the plasma and laser parameters, and it was verified by particle-in-cell simulations.
Journal ArticleDOI

Betatron emission as a diagnostic for injection and acceleration mechanisms in laser-plasma accelerators

TL;DR: In this article, the emission length and the position of the x-ray emission can be obtained by placing an aperture mask close to the source, and by measuring the beam profile of the betatron radiation far from the aperture mask.
Journal ArticleDOI

Controlling strongly correlated dust clusters with lasers

TL;DR: In this paper, the authors investigated the structural properties of two-dimensional (2D) and 3D spherical crystals in nearly harmonic traps (Yukawa balls) and showed that laser heating has unique capabilities because it affects only the dust particles leaving the lighter plasma components unchanged.
Journal ArticleDOI

Role of direct laser acceleration in energy gained by electrons in a laser wakefield accelerator with ionization injection

TL;DR: In this article, the role of the transverse electric field of the laser plays in the acceleration of electrons in a laser wakefield accelerator operating in the quasi-blowout regime through particle-in-cell code simulations.
References
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Book

Classical Electrodynamics

Book

A wavelet tour of signal processing

TL;DR: An introduction to a Transient World and an Approximation Tour of Wavelet Packet and Local Cosine Bases.
Journal ArticleDOI

Laser Electron Accelerator

TL;DR: In this paper, an intense electromagnetic pulse can create a weak of plasma oscillations through the action of the nonlinear ponderomotive force, and electrons trapped in the wake can be accelerated to high energy.
Journal ArticleDOI

A laser-plasma accelerator producing monoenergetic electron beams

TL;DR: It is demonstrated that this randomization of electrons in phase space can be suppressed and that the quality of the electron beams can be dramatically enhanced.
Journal ArticleDOI

High-quality electron beams from a laser wakefield accelerator using plasma-channel guiding

TL;DR: A laser accelerator that produces electron beams with an energy spread of a few per cent, low emittance and increased energy (more than 109 electrons above 80 MeV) and opens the way for compact and tunable high-brightness sources of electrons and radiation.
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