Measurements and models of enhanced recombination following inner-shell vacancies in liquid xenon
Physical Review D American Physical Society (APS) 112:1 (2025) 012024
Abstract:
Electron-capture decays of and , and double-electron-capture decays of , are backgrounds in searches for weakly interacting massive particles (WIMPs) conducted by dual-phase xenon time projection chambers such as LUX-ZEPLIN (LZ). These decays produce signals with more light and less charge than equivalent-energy decays and correspondingly overlap more with WIMP signals. We measure three electron-capture charge yields in LZ: the 1.1 keV M-shell, 5.2 keV L-shell, and 33.2 keV K-shell at drift fields of 193 and . The LL double-electron-capture decay of exhibits even more pronounced shifts in charge and light. We provide a first model of double-electron-capture charge yields using the link between ionization density and electron-ion recombination, and identify a need for more accurate calculations. Finally, we discuss the implications of the reduced charge yield of these decays and other interactions creating inner-shell vacancies for future dark matter searches.First Constraint on Atmospheric Millicharged Particles with the LUX-ZEPLIN Experiment
Physical Review Letters American Physical Society (APS) 134:24 (2025) 241802
New Constraints on Cosmic Ray-Boosted Dark Matter from the LUX-ZEPLIN Experiment
Physical Review Letters American Physical Society (APS) 134:24 (2025) 241801
Neutrinoless double beta decay sensitivity of the XLZD rare event observatory
Journal of Physics G: Nuclear and Particle Physics IOP Publishing 52:4 (2025) 045102
Abstract:
The XLZD collaboration is developing a two-phase xenon time projection chamber with an active mass of 60–80 t capable of probing the remaining weakly interacting massive particle-nucleon interaction parameter space down to the so-called neutrino fog. In this work we show that, based on the performance of currently operating detectors using the same technology and a realistic reduction of radioactivity in detector materials, such an experiment will also be able to competitively search for neutrinoless double beta decay in 136Xe using a natural-abundance xenon target. XLZD can reach a 3σ discovery potential half-life of 5.7 × 1027 years (and a 90% CL exclusion of 1.3 × 1028 years) with 10 years of data taking, corresponding to a Majorana mass range of 7.3–31.3 meV (4.8–20.5 meV). XLZD will thus exclude the inverted neutrino mass ordering parameter space and will start to probe the normal ordering region for most of the nuclear matrix elements commonly considered by the community.New constraints on cosmic ray-boosted dark matter from the LUX-ZEPLIN experiment
(2025)