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January 22, 2026JACOW0 citationsOpen Access

Design of a non-invasive laser-based beam profile monitor system for the new Fermilab PIP-II superconducting H- linac

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VSVictor ScarpineRTRandy Thurman-KeupTJTodd Johnson

Key Points

  • To design a non-invasive laser-based monitoring system for beam profiles in the PIP-II superconducting H- linac.
  • Developed a system using non-invasive laser monitors known as laserwires.
  • Utilized photoionization to obtain accurate beam profiles.
  • Designed an optical transport line and 13 individual laserwire stations.
  • Implemented pulsed laser technology with feedback and timing controls.
  • Outlined a signal detection system for effective profile measurement.
  • Successfully designed the laserwire system to monitor beam profiles.
  • The system aims to limit potential damage to the superconducting RF cavities.
  • Demonstrated the feasibility of using picosecond pulsed lasers for beam monitoring.

Abstract

As part of the new Proton Improvement Plan (PIP-II), Fermilab is undertaking the development of a new 800 MeV, 2 mA H- superconducting RF linac to replace its present normal conducting 400 MeV linac. The PIP-II linac consists of a series of superconducting RF cryomodules from 2.1 MeV to 800 MeV. To limit the potential damage to the superconducting RF cavities, PIP-II will utilize non-invasive laser-based monitors (laserwires) to obtain beam profiles via photoionization. This paper will present the design of this PIP-II laserwire system including the picosecond pulsed laser, optical transport line, 13 individual laserwire stations, laser feedback and timing controls. The paper also describes the signal detection system and operation of the profile measurements.

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Cite This Study

Scarpine et al. (2026) studied this question.

synapsesocial.com/papers/6971bdcf642b1836717e27f6https://doi.org/10.18429/jacow-ibic2025-tupmo31
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