Subrelativistic Alternating Phase Focusing Dielectric Laser Accelerators

Fuente: arXiv
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Bibliographic Details
Main Authors: Broaddus, Payton, Egenolf, Thilo, Black, Dylan S., Murillo, Melanie, Woodahl, Clarisse, Miao, Yu, Niedermayer, Uwe, Byer, Robert L., Leedle, Kenneth J., Solgaard, Olav
Format: Preprint
Published: 2023
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author Broaddus, Payton
Egenolf, Thilo
Black, Dylan S.
Murillo, Melanie
Woodahl, Clarisse
Miao, Yu
Niedermayer, Uwe
Byer, Robert L.
Leedle, Kenneth J.
Solgaard, Olav
author_facet Broaddus, Payton
Egenolf, Thilo
Black, Dylan S.
Murillo, Melanie
Woodahl, Clarisse
Miao, Yu
Niedermayer, Uwe
Byer, Robert L.
Leedle, Kenneth J.
Solgaard, Olav
contents We demonstrate a silicon-based electron accelerator that uses laser optical near fields to both accelerate and confine electrons over extended distances. Two dielectric laser accelerator (DLA) designs were tested, each consisting of two arrays of silicon pillars pumped symmetrically by pulse front tilted laser beams, designed for average acceleration gradients 35 and 50 MeV/m respectively. The DLAs are designed to act as alternating phase focusing (APF) lattices, where electrons, depending on the electron-laser interaction phase, will alternate between opposing longitudinal and transverse focusing and defocusing forces. By incorporating fractional period drift sections that alter the synchronous phase between $\pm 60^\circ$ off crest, electrons captured in the designed acceleration bucket experience half the peak gradient as average gradient while also experiencing strong confinement forces that enable long interaction lengths. We demonstrate APF accelerators with interaction lengths up to 708 $μ$m and energy gains up to 23.7 $\pm$ 1.07 keV FWHM, a 25$\%$ increase from starting energy, demonstrating the ability to achieve substantial energy gains with subrelativistic DLA.
format Preprint
id arxiv_https___arxiv_org_abs_2310_02434
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Subrelativistic Alternating Phase Focusing Dielectric Laser Accelerators
Broaddus, Payton
Egenolf, Thilo
Black, Dylan S.
Murillo, Melanie
Woodahl, Clarisse
Miao, Yu
Niedermayer, Uwe
Byer, Robert L.
Leedle, Kenneth J.
Solgaard, Olav
Accelerator Physics
We demonstrate a silicon-based electron accelerator that uses laser optical near fields to both accelerate and confine electrons over extended distances. Two dielectric laser accelerator (DLA) designs were tested, each consisting of two arrays of silicon pillars pumped symmetrically by pulse front tilted laser beams, designed for average acceleration gradients 35 and 50 MeV/m respectively. The DLAs are designed to act as alternating phase focusing (APF) lattices, where electrons, depending on the electron-laser interaction phase, will alternate between opposing longitudinal and transverse focusing and defocusing forces. By incorporating fractional period drift sections that alter the synchronous phase between $\pm 60^\circ$ off crest, electrons captured in the designed acceleration bucket experience half the peak gradient as average gradient while also experiencing strong confinement forces that enable long interaction lengths. We demonstrate APF accelerators with interaction lengths up to 708 $μ$m and energy gains up to 23.7 $\pm$ 1.07 keV FWHM, a 25$\%$ increase from starting energy, demonstrating the ability to achieve substantial energy gains with subrelativistic DLA.
title Subrelativistic Alternating Phase Focusing Dielectric Laser Accelerators
topic Accelerator Physics
url https://arxiv.org/abs/2310.02434