Seeding of proton bunch self-modulation by an electron bunch in plasma
L. Verra, G. Zevi Della Porta, K.-J. Moon, A.-M. Bachmann, E., Gschwendtner, P. Muggli

TL;DR
This paper explores a novel method of seeding proton bunch self-modulation in plasma using a short electron bunch, aiming to improve wakefield stability and acceleration efficiency in plasma wakefield experiments.
Contribution
It introduces and analyzes a new seeding technique with an electron bunch, offering advantages over previous ionization front methods for plasma wakefield acceleration.
Findings
Numerical simulations indicate effective seeding with an electron bunch.
Preliminary experiments show successful seed wakefield generation.
Electron bunch parameters are critical for optimal seeding.
Abstract
The AWAKE experiment relies on the self-modulation instability of a long proton bunch to effectively drive wakefields and accelerate an electron bunch to GeV-level energies. During the first experimental run (2016-2018) the instability was made phase reproducible by means of a seeding process: a short laser pulse co-propagates within the proton bunch in a rubidium vapor. Thus, the fast creation of plasma and the onset of beam-plasma interaction within the bunch drives seed wakefields. However, this seeding method leaves the front of the bunch not modulated. The bunch front could self-modulate in a second, preformed plasma and drive wakefields that would interfere with those driven by the (already self-modulated) back of the bunch and with the acceleration process. We present studies of the seeded the self-modulation (SSM) of a long proton bunch using a short electron bunch. The short…
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Taxonomy
TopicsParticle Accelerators and Free-Electron Lasers · Magnetic confinement fusion research · Particle accelerators and beam dynamics
