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Journal ArticleDOI

Laser acceleration of electrons in vacuum

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TLDR
The vacuum beat wave accelerator (VBWA) concept is proposed and analyzed, and acceleration by two crossed beams is correctly described by the Lawson-Woodward theorem, and single-particle simulations confirm that substantial energy gains are possible and that optical components are not needed near the focal region.
Abstract
Several features of vacuum laser acceleration are reviewed, analyzed, and discussed, including electron acceleration by two crossed laser beams and acceleration by a higher-order Gaussian beam. In addition, the vacuum beat wave accelerator (VBWA) concept is proposed and analyzed. It is shown that acceleration by two crossed beams is correctly described by the Lawson-Woodward (LW) theorem, i.e., no net energy gain results for a relativistic electron interacting with the laser fields over an infinite interaction distance. Finite net energy gains can be obtained by placing optical components near the laser focus to limit the interaction region. The specific case of a higher-order Gaussian beam reflected by a mirror placed near focus is analyzed in detail. It is shown that the damage threshold of the mirror is severely limiting, i.e., substantial energy gains require very high electron injection energies. The VBWA, which uses two copropagating laser beams of different frequencies, relies on nonlinear ponderomotive forces, thus violating the assumptions of the LW theorem. Single-particle simulations confirm that substantial energy gains are possible and that optical components are not needed near the focal region.

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Journal ArticleDOI

Vacuum laser acceleration of relativistic electrons using plasma mirror injectors

TL;DR: In this article, the first experimental observation of VLA of electrons to relativistic energies was made by using a plasma mirror to inject electrons in an ultraintense laser field, and thus producing 10 MeV multi-nC bunches.
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Electron acceleration from rest in vacuum by an axicon Gaussian laser beam

TL;DR: In this article, the lowest-order radially polarized axicon fields of a Gaussian laser beam were employed to demonstrate that electrons may be accelerated from rest in vacuum to a few GeV.
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Horizons of petawatt laser technology

Abstract: Recent advances in the development of superpower lasers are reviewed. A number of possibilities that the newly available petawatt-power level lasers open up in the physics of extreme light fields are discussed.
Journal ArticleDOI

Vacuum electron acceleration by an intense laser

TL;DR: In this paper, the characteristics and essential conditions under which an electron, in a vacuum laser beam, can undergo a capture and acceleration scenario (CAS) were investigated. But the experimental results were limited to the case where the electron was trapped in the acceleration phase of the wave for a longer time.
Journal ArticleDOI

Head-on injection of a high quality electron beam by the interaction of two laser pulses

TL;DR: In this paper, high quality intense relativistic electron beams are generated by the interaction of two colliding laser pulses to inject plasma electrons into a wakefield excited by one of the laser pulses.
References
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Book

Antenna Engineering Using Physical Optics: Practical CAD Techniques and Software

TL;DR: This hands-on guide shows you how to combine physical optics modeling techniques with the free space dyadic Green's function to quickly and easily calculate antenna patterns and diffraction from nearby objects, letting your PC do the specialized math for you.
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