Characterization of the QUartz Photon Intensifying Detector (QUPID) for Noble Liquid Detectors
arXiv:1103.3689 · doi:10.1016/j.nima.2011.07.015
Abstract
Dark Matter and Double Beta Decay experiments require extremely low radioactivity within the detector materials. For this purpose, the University of California, Los Angeles and Hamamatsu Photonics have developed the QUartz Photon Intensifying Detector (QUPID), an ultra-low background photodetector based on the Hybrid Avalanche Photo Diode (HAPD) and entirely made of ultraclean synthetic fused silica. In this work we present the basic concept of the QUPID and the testing measurements on QUPIDs from the first production line. Screening of radioactivity at the Gator facility in the Laboratori Nazionali del Gran Sasso has shown that the QUPIDs safely fulfill the low radioactive contamination requirements for the next generation zero background experiments set by Monte Carlo simulations. The quantum efficiency of the QUPID at room temperature is > 30% at the xenon scintillation wavelength. At low temperatures, the QUPID shows a leakage current less than 1 nA and a global gain of 10^5. In these conditions, the photocathode and the anode show > 95% linearity up to 1 uA for the cathode and 3 mA for the anode. The photocathode and collection efficiency are uniform to 80% over the entire surface. In parallel with single photon counting capabilities, the QUPIDs have a good timing response: 1.8 +/- 0.1 ns rise time, 2.5 +/- 0.2 ns fall time, 4.20 +/- 0.05 ns pulse width, and 160 +/- 30 ps transit time spread. The QUPIDs have also been tested in a liquid xenon environment, and scintillation light from 57Co and 210Po radioactive sources were observed.
15 pages, 22 figures
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- Neutrino physics with multi-ton scale liquid xenon detectors
- DARWIN: dark matter WIMP search with noble liquids
- Performance of the Hamamatsu R11410 Photomultiplier Tube in cryogenic Xenon Environments
- Gaseous and dual-phase time projection chambers for imaging rare processes
- Modeling Pulse Characteristics in Xenon with NEST
- A measurement of the time profile of scintillation induced by low energy gamma-rays in liquid xenon with the XMASS-I detector
- Studies of a three-stage dark matter and neutrino observatory based on multi-ton combinations of liquid xenon and liquid argon detectors
- GraXe, graphene and xenon for neutrinoless double beta decay searches
- Scintillation decay-time constants for alpha particles and electrons in liquid xenon
- Feasibility study of SiGHT: a novel ultra low background photosensor for low temperature operation