Demonstration of the light collection stability of a PEN-based wavelength shifting reflector in a tonne scale liquid argon detector
arXiv:2411.17934 · doi:10.1088/1748-0221/20/05/C05033
Abstract
Liquid argon detectors rely on wavelength shifters for efficient detection of scintillation light. The current standard is tetraphenyl butadiene (TPB), but it is challenging to instrument on a large scale. Poly(ethylene 2,6-naphthalate) (PEN), a polyester easily manufactured as thin sheets, could simplify the coverage of large surfaces with wavelength shifters. Previous measurements have shown that commercial grades of PEN have approximately 50% light conversion efficiency relative to TPB. Encouraged by these results, we conducted a large-scale measurement using combined PEN and specular reflector foils in a two-tonne liquid argon dewar to assess its stability over approximately two weeks. This test is crucial for validating PEN as a viable substitute for TPB. The setup used for the measurement of the stability of PEN as a wavelength shifter is described, together with the first results, showing no evidence of performance deterioration over a period of 12 days.
10 pages, 13 figures
References in corpus (9)
- The ArDM Liquid Argon Time Projection Chamber at the Canfranc Underground Laboratory: a ton-scale detector for Dark Matter Searches
- Wavelength shifters for applications in liquid argon detectors
- Properties of Liquid Argon Scintillation Light Emission
- Direct comparison of PEN and TPB wavelength shifters in a liquid argon detector
- Wavelength-Shifting Performance of Polyethylene Naphthalate Films in a Liquid Argon Environment
- R&D of Wavelength-Shifting Reflectors and Characterization of the Quantum Efficiency of Tetraphenyl Butadiene and Polyethylene Naphthalate in Liquid Argon
- The science and technology of liquid argon detectors
- Measurement of the relative Quantum Efficiency of Hamamatsu model R5912-20MOD photomultiplier tubes at liquid argon temperature
- Relative Measurement and Extrapolation of the Scintillation Quenching Factor of -Particles in Liquid Argon using DEAP-3600 Data