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Spectroscopic analysis of the argon scintillation with a wavelength sensitive particle detector

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arxiv 2012.08262 v1 pith:D727SZD2 submitted 2020-12-15 physics.ins-det astro-ph.IMhep-ex

Spectroscopic analysis of the argon scintillation with a wavelength sensitive particle detector

classification physics.ins-det astro-ph.IMhep-ex
keywords scintillationargoncontinuumemissionlightparticlepressuresecond
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We performed a time-resolved spectroscopic study of the VUV/UV argon scintillation as a function of pressure and electric field, by means of a wavelength sensitive detector operated with different radioactive sources. Our work conveys new evidence of distinctive features of the argon light which are in contrast with the general assumption that, for particle detection purposes, the scintillation can be considered to be largely monochromatic at 128 nm (second continuum). The wavelength and the time-resolved analysis of the photon emission reveal that the dominant component of the argon scintillation during first tens of ns is in the range [160, 325] nm. This light is consistent with the third continuum emission from highly charged argon ions/molecules. This component of the scintillation is field-independent up to 25 V/cm/bar and shows a very mild dependence with pressure in the range [1,16] bar. The dynamics of the second continuum emission is dominated by the excimer formation time, whose variation as a function of the pressure has been measured. Additionally, the time and pressure-dependent features of electron-ion recombination, in the second continuum band, have been measured. This study opens new paths toward a novel particle identification technique based on the spectral information of the noble-elements scintillation light.

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  1. Detection of scintillation light in noble gases with wavelength-shifting optical fibers

    physics.ins-det 2026-07 accept novelty 5.0

    TPB-coated WLS fibers achieve LCE of 1.18% (Xe) and 1.07% (Ar) up to 8.5 bar with SiPM readout, confirmed by an independent PMT setup after PDE scaling.