Background determination for the LUX-ZEPLIN dark matter experiment
Physical Review D American Physical Society (APS) 108:1 (2023) 012010
A next-generation liquid xenon observatory for dark matter and neutrino physics
Journal of Physics G Nuclear and Particle Physics IOP Publishing 50:1 (2022) 13001
Abstract:
The nature of dark matter and properties of neutrinos are among the most pressing issues in contemporary particle physics. The dual-phase xenon time-projection chamber is the leading technology to cover the available parameter space for weakly interacting massive particles, while featuring extensive sensitivity to many alternative dark matter candidates. These detectors can also study neutrinos through neutrinoless double-beta decay and through a variety of astrophysical sources. A next-generation xenon-based detector will therefore be a true multi-purpose observatory to significantly advance particle physics, nuclear physics, astrophysics, solar physics, and cosmology. This review article presents the science cases for such a detector.Fast and flexible analysis of direct dark matter search data with machine learning
Physical Review D American Physical Society (APS) 106:7 (2022) 072009
Direct detection of dark matter—APPEC committee report* *This report has received approval from APPEC (1 April 2021; https://appec.org/documents).
Reports on Progress in Physics IOP Publishing 85:5 (2022) 056201
Design and production of the high voltage electrode grids and electron extraction region for the LZ dual-phase xenon time projection chamber
Nuclear Instruments and Methods in Physics Research Section A Accelerators Spectrometers Detectors and Associated Equipment Elsevier 1031 (2022) 165955