High Dose‐Rate MeV Electron Beam from a Tightly‐Focused Femtosecond IR Laser in Ambient Air

Author:

Vallières Simon12ORCID,Powell Jeffrey1,Connell Tanner3,Evans Michael3,Lytova Marianna1,Fillion‐Gourdeau François14,Fourmaux Sylvain1,Payeur Stéphane1,Lassonde Philippe1,MacLean Steve124,Légaré François1

Affiliation:

1. Centre Énergie Matériaux Télécommunications Institut national de la recherche scientifique (INRS) 1650 blvd. Lionel‐Boulet Varennes QC J3X 1P7 Canada

2. Institute for Quantum Computing (IQC) University of Waterloo 200 University Ave W. Waterloo ON N2L 3G1 Canada

3. Medical Physics Unit McGill University Health Center (MUHC) 1001 blvd. Décarie Montréal QC H4A 3J1 Canada

4. Infinite Potential Laboratories LP 485 Wes Graham Way Waterloo ON N2L 6R2 Canada

Abstract

AbstractUltrashort electron beams with femtosecond to picosecond bunch durations offer unique opportunities to explore active research areas ranging from ultrafast structural dynamics to ultra‐high dose‐rate radiobiological studies. It presents a straightforward method to generate relativistic electron beams in ambient air via the tight focusing of a few‐cycle, mJ‐class femtosecond infrared laser. It demonstrates experimentally that electrons can reach up to 1.4 MeV at a dose‐rate of 0.15 Gy/s, providing enough dose rate for radiation therapy applications. 3D Particle‐In‐Cell simulations confirm that the acceleration mechanism is based on the relativistic ponderomotive force and show theoretical agreement with the measured electron energies and divergence. Relativistic peak intensities up to 1019 Wcm−2 are reached in ambient air due to a very low B‐integral accumulation during focusing, which prevents intensity clamping. Furthermore, it discusses the scalability of this method with the continuing development of mJ‐class high average power lasers, and providing a promising approach for FLASH radiation therapy.

Funder

Natural Sciences and Engineering Research Council of Canada

Fonds de recherche du Québec – Nature et technologies

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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