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arxiv: 1706.07629 · v2 · pith:WWS2XWY3new · submitted 2017-06-23 · ⚛️ physics.ins-det · physics.med-ph

Monte Carlo study of the Coincidence Resolving Time of a liquid xenon PET scanner, using Cherenkov radiation

classification ⚛️ physics.ins-det physics.med-ph
keywords cherenkovliquidtimexenoncarlocoincidencedetectionfact
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In this paper we use detailed Monte Carlo simulations to demonstrate that liquid xenon (LXe) can be used to build a Cherenkov-based TOF-PET, with an intrinsic coincidence resolving time (CRT) in the vicinity of 10 ps. This extraordinary performance is due to three facts: a) the abundant emission of Cherenkov photons by liquid xenon; b) the fact that LXe is transparent to Cherenkov light; and c) the fact that the fastest photons in LXe have wavelengths higher than 300 nm, therefore making it possible to separate the detection of scintillation and Cherenkov light. The CRT in a Cherenkov LXe TOF-PET detector is, therefore, dominated by the resolution (time jitter) introduced by the photosensors and the electronics. However, we show that for sufficiently fast photosensors (e.g, an overall 40 ps jitter, which can be achieved by current micro-channel plate photomultipliers) the overall CRT varies between 30 and 55 ps, depending of the detection efficiency. This is still one order of magnitude better than commercial CRT devices and improves by a factor 3 the best CRT obtained with small laboratory prototypes.

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  1. Measurement of the scintillation resolution in liquid xenon and its impact for future segmented calorimeters

    physics.ins-det 2022-10 unverdicted novelty 6.0

    Experimental measurement finds 3.7% scintillation resolution at 511 keV in liquid xenon using high-PDE SiPMs, close to the 2.8% Poisson limit and compatible with 1.8% theoretical intrinsic resolution.