Measurement of the Quantum Efficiency of Electrode Materials for VUV Photons in Liquid Xenon
arXiv:2503.14819 · doi:10.1093/ptep/ptaf078
Abstract
Light dark matter searches using ionization signals in dual-phase liquid xenon (LXe) time projection chambers (TPCs) are limited by low-energy ionization backgrounds, including those from the photoelectric effect on the electrodes. To address this, we measured the quantum efficiency (QE) of various electrode materials for vacuum ultraviolet (VUV) photons in LXe, including platinum (Pt), stainless steel (SUS304), and magnesium fluoride (MgF)-coated aluminum (Al). Our results show that MgF-coated Al exhibits the lowest QE among the tested materials. The QE for VUV photons with a mean wavelength of 179.5~nm was measured to be , corresponding to a reduction by a factor of 4.4 compared to SUS304, a commonly used electrode material in direct dark matter experiments with LXe. These findings suggest that employing low-QE electrodes can help mitigate photoelectric-induced backgrounds, potentially improving the sensitivity of LXe TPCs in light dark matter searches.
11 pages, 5 figures, 2 tables
References in corpus (10)
- First Dark Matter Search Results from the LUX-ZEPLIN (LZ) Experiment
- First Dark Matter Search with Nuclear Recoils from the XENONnT Experiment
- DARWIN: towards the ultimate dark matter detector
- The LUX-ZEPLIN (LZ) Experiment
- Dark Matter Search Results from 1.54 TonneYear Exposure of PandaX-4T
- Emission of Single and Few Electrons in XENON1T and Limits on Light Dark Matter
- Search for light dark matter with ionization signals in the PandaX-4T Experiment
- Investigation of background electron emission in the LUX detector
- Search for Light Dark Matter in Low-Energy Ionization Signals from XENONnT
- Validation of the VUV-reflective coating for next-generation liquid xenon detectors