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Light Response of Poly(ethylene 2,6-napthalate) to Neutrons

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arxiv 2204.02866 v2 pith:XM25632S submitted 2022-04-06 physics.ins-det hep-exnucl-ex

classification physics.ins-dethep-exnucl-ex
keywords neutronsneutronbackgroundbeendifferentemittedenergyfactor
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

There is increasing necessity for low background active materials as ton-scale, rare-event and cryogenic detectors are developed. Poly(ethylene-2,6-naphthalate) (PEN) has been considered for these applications because of its robust structural characteristics, and its scintillation light in the blue wavelength region. Radioluminescent properties of PEN have been measured to aid in the evaluation of this material. In this article we present a measurement of PEN's quenching factor using three different neutron sources; neutrons emitted from spontaneous fission in $^{252}$Cf, neutrons generated from a DD generator, and neutrons emitted from the $^{13}$C($\alpha$,n)$^{16}$O and the $^{7}$Li(p,n)$^{7}$Be nuclear reactions. The fission source used time-of-flight to determine the neutron energy, and the neutron energy from the nuclear reactions was defined using thin targets and reaction kinematics. The Birk's factor and scintillation efficiency were found to be $kB = 0.12 \pm 0.01$ mm MeV$^{-1}$ and $S = 1.31\pm0.09$ MeV$_{ee}$ MeV$^{-1}$ from a simultaneous analysis of the data obtained from the three different sources. With these parameters, it is possible to evaluate PEN as a viable material for large-scale, low background physics experiments.

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  1. Demonstration of the light collection stability of a PEN-based wavelength shifting reflector in a tonne scale liquid argon detector

    physics.ins-det 2024-11 conditional novelty 6.0 of 10

    A tonne-scale liquid argon detector instrumented with 4 m^2 of PEN wavelength-shifting reflector shows no light-yield deterioration over 12 days.

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