Exploring the keV-scale physics potential of CUORE
arXiv:2505.23955 · doi:10.1103/fv25-bfgx
Abstract
We present the analysis techniques developed to explore the keV-scale energy region of the CUORE experiment, based on more than 2 tonne yr of data collected over 5 years. By prioritizing a stricter selection over a larger exposure, we are able to optimize data selection for thresholds at 10 keV and 3 keV with 691 kg yr and 11 kg yr of data, respectively. We study how the performance varies among the 988-detector array with different detector characteristics and data taking conditions. We achieve an average baseline resolution of 2.54 0.14 keV FWHM and 1.18 0.02 keV FWHM for the data selection at 10 keV and 3 keV, respectively. The analysis methods employed reduce the overall background by about an order of magnitude, reaching 2.06 0.05 counts/(keV kg days) and 16 2 counts/(keV kg days) at the thresholds of 10 keV and 3 keV. We evaluate for the first time the near-threshold reconstruction efficiencies of the CUORE experiment, and find these to be 26 4 \% and 50 2 \% at 3 keV and 10 keV, respectively. This analysis provides crucial insights into rare decay studies, new physics searches, and keV-scale background modeling with CUORE. We demonstrate that tonne-scale cryogenic calorimeters can operate across a wide energy range, from keV to MeV, establishing their scalability as versatile detectors for rare event and dark matter physics. These findings also inform the optimization of future large mass cryogenic calorimeters to enhance the sensitivity to low-energy phenomena.
References in corpus (24)
- New experimental approaches in the search for axion-like particles
- Annual Modulation of Dark Matter: A Review
- Search for New Physics in Electronic Recoil Data from XENONnT
- Dark matter and the early Universe: a review
- Toward the discovery of matter creation with neutrinoless double-beta decay
- Improved Limit on Neutrinoless Double-Beta Decay in Te with CUORE
- The projected background for the CUORE experiment
- Validation of techniques to mitigate copper surface contamination in CUORE
- Neutrinoless Double Beta Decay and the Baryon Asymmetry of the Universe
- The CUORE cryostat: an infrastructure for rare event searches at millikelvin temperatures
- Direct detection of dark matter: a critical review
- Lowering the energy threshold of large-mass bolometric detectors
- Dark matter detection in two easy steps
- Theoretical Estimate of the Sensitivity of the CUORE Detector to Solar Axions
- New Limits on Naturally Occurring Electron Capture of 123Te
- Radon mitigation during the installation of the CUORE decay detector
- The low energy spectrum of TeO2 bolometers: results and dark matter perspectives for the CUORE-0 and CUORE experiments
- CUPID, the CUORE Upgrade with Particle IDentification
- New direct limit on neutrinoless double beta decay half-life of Te with CUORE
- The background model of the CUPID-Mo experiment
- A first test of CUPID prototypal light detectors with NTD-Ge sensors in a pulse-tube cryostat
- Twelve-crystal prototype of LiMoO scintillating bolometers for CUPID and CROSS experiments
- Sensitivity of the CUORE detector to keV solar axions emitted by the M1 nuclear transition ofFe
- The environmental low-frequency background for macro-calorimeters at the millikelvin scale