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Collider-quality electron bunches from an all-optical plasma photoinjector

  • Arohi Jain
  • , Jiayang Yan
  • , Jacob R. Pierce
  • , Tanner T. Simpson
  • , Mikhail Polyanskiy
  • , William Li
  • , Marcus Babzien
  • , Mark Palmer
  • , Michael Downer
  • , Roman Samulyak
  • , Chan Joshi
  • , Warren B. Mori
  • , John P. Palastro
  • , Navid Vafaei-Najafabadi
  • Stony Brook University
  • University of California at Los Angeles
  • University of Rochester
  • Brookhaven National Laboratory
  • University of Texas at Austin

Research output: Contribution to journalArticlepeer-review

Abstract

We present an approach for generating collider-quality electron bunches using a plasma photoinjector. The approach leverages recently developed techniques for the spatiotemporal control of laser pulses to produce a moving ionization front in a nonlinear plasma wave. The moving ionization front generates an electron bunch with a current profile that balances the longitudinal electric field of an electron beam-driven plasma wave, creating a uniform accelerating field across the bunch. Particle-in-cell (PIC) simulations of the ionization stage show the formation of an electron bunch with 220 pC charge and low emittance (ɛx=171 nm rad, ɛy=76 nm rad). Quasistatic PIC simulations of the acceleration stage show that the bunch is efficiently accelerated to 24 GeV over 2 m with a final energy spread of less than 1% and emittances of ɛx=189 nm rad and ɛy=80 nm rad. This high-quality electron bunch meets the requirements outlined by the Snowmass process for intermediate-energy colliders and compares favorably to the beam quality of proposed and existing accelerator facilities. The results establish the feasibility of plasma photoinjectors for future collider applications making a significant step toward the realization of high-luminosity, compact accelerators for particle physics research.

Original languageEnglish
Article number023213
JournalPhysical Review Research
Volume8
Issue number2
DOIs
StatePublished - Apr 1 2026

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