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Abstract The Cryogenic Underground Observatory for Rare Events (CUORE) is the first cryogenic experiment searching for
decay that has been able to reach the one-tonne mass scale. The detector, located at the Laboratori Nazionali del Gran Sasso (LNGS) in Italy, consists of an array of 988$$0\nu \beta \beta $$ crystals arranged in a compact cylindrical structure of 19 towers. CUORE began its first physics data run in 2017 at a base temperature of about 10 mK and in April 2021 released its$${\mathrm{TeO}}_{2}$$ result of the search for$$3{\mathrm{rd}}$$ , corresponding to a tonne-year of$$0\nu \beta \beta $$ exposure. This is the largest amount of data ever acquired with a solid state detector and the most sensitive measurement of$$\mathrm{TeO}_{2}$$ decay in$$0\nu \beta \beta $$ ever conducted . We present the current status of CUORE search for$${}^{130}\mathrm{Te}$$ with the updated statistics of one tonne-yr. We finally give an update of the CUORE background model and the measurement of the$$0\nu \beta \beta $$ $${}^{130}\mathrm{Te}$$ decay half-life and decay to excited states of$$2\nu \beta \beta $$ , studies performed using an exposure of 300.7 kg yr.$${}^{130}\mathrm{Xe}$$ -
Abstract The possibility that neutrinos may be their own antiparticles, unique among the known fundamental particles, arises from the symmetric theory of fermions proposed by Ettore Majorana in 1937 1 . Given the profound consequences of such Majorana neutrinos, among which is a potential explanation for the matter–antimatter asymmetry of the universe via leptogenesis 2 , the Majorana nature of neutrinos commands intense experimental scrutiny globally; one of the primary experimental probes is neutrinoless double beta (0 νββ ) decay. Here we show results from the search for 0 νββ decay of 130 Te, using the latest advanced cryogenic calorimeters with the CUORE experiment 3 . CUORE, operating just 10 millikelvin above absolute zero, has pushed the state of the art on three frontiers: the sheer mass held at such ultralow temperatures, operational longevity, and the low levels of ionizing radiation emanating from the cryogenic infrastructure. We find no evidence for 0 νββ decay and set a lower bound of the process half-life as 2.2 × 10 25 years at a 90 per cent credibility interval. We discuss potential applications of the advances made with CUORE to other fields such as direct dark matter, neutrino and nuclear physics searches and large-scale quantum computing, which can benefit from sustained operation of large payloads in a low-radioactivity, ultralow-temperature cryogenic environment.more » « less
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