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Updated: Aug 5, 2026

A Basic Positron Emission Tomography System Constructed to Locate a Radioactive Source in a Bi-dimensional Space
Published on: February 1, 2016
Construction and characterization of a muon trigger detector for the PSI muEDM experiment
Guan Ming Wong1, Tianqi Hu1, Samip Basnet1,2
1State Key Laboratory of Dark Matter Physics, Key Laboratory for Particle Astrophysics and Cosmology (MOE), Shanghai Key Laboratory for Particle Physics and Cosmology (SKLPPC), Tsung-Dao Lee Institute and School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai, 201210 China.
None:
We present the upgraded design, construction, and beam test results for the muon trigger detector (MTD) developed for the muon electric dipole moment (muEDM) experiment at the Paul Scherrer Institute (PSI) in Switzerland. This experiment aims to improve the sensitivity of the muon EDM measurement by more than three orders of magnitude beyond the current limit established by the BNL Muon experiment. Precise identification of storable incoming muons at the entrance of the storage solenoid is essential, as the MTD must rapidly trigger a pulsed magnetic kicker to confine muons in the central region of the solenoid, where a weakly focusing magnetic field is maintained. The MTD comprises two subsystems: a 0.1 mm-thick plastic scintillator "gate detector" read out by four silicon photomultipliers (SiPMs), and a 5 mm-thick CNC-machined plastic scintillator "active aperture detector" read out by six SiPMs. The geometry of the active aperture detector was optimized through acceptance studies to maximize both storage efficiency and background veto efficiency. Integrated fast electronics generate an LVTTL trigger signal under an anti-coincidence condition - a muon detected in the gate but not in the aperture - ensuring selective triggering of storable muon events for the EDM measurement. The system was tested at the PSI E1 beamline using 22.5 MeV/c muons under scaled-down conditions to characterize detector response and trigger performance. A Geant4 simulation incorporating detailed optical photon transport and SiPM response modeling was developed and reproduces the measured event topologies with agreement. These results validate the detector design and demonstrate the MTD's readiness for deployment in the full muEDM Phase-1 setup.

