11 research outputs found

    Development of 100^{100}Mo-containing scintillating bolometers for a high-sensitivity neutrinoless double-beta decay search

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    We report recent achievements in the development of scintillating bolometers to search for neutrinoless double-beta decay of 100^{100}Mo. The presented results have been obtained in the framework of the LUMINEU, LUCIFER and EDELWEISS collaborations, and are now part of the R\&D activities towards CUPID (CUORE Update with Particle IDentification), a proposed next-generation double-beta decay experiment based on the CUORE experience. We have developed a technology for the production of large mass (\sim1 kg), high optical quality, radiopure zinc and lithium molybdate crystal scintillators (ZnMoO4_4 and Li2_2MoO4_4, respectively) from deeply purified natural and 100^{100}Mo-enriched molybdenum. The procedure is applied for a routine production of enriched crystals. Furthermore, the technology of a single detector module consisting of a large-volume (100\sim 100~cm3^3) Zn100^{100}MoO4_4 and Li2_2100^{100}MoO4_4 scintillating bolometer has been established, demonstrating performance and radiopurity that are close to satisfy the demands of CUPID. In particular, the FWHM energy resolution of the detectors at 2615 keV --- near the QQ-value of the double-beta transition of 100^{100}Mo (3034~keV) --- is \approx 4--10~keV. The achieved rejection of α\alpha-induced dominant background above 2.6~MeV is at the level of more than 99.9\%. The bulk activity of 232^{232}Th (228^{228}Th) and 226^{226}Ra in the crystals is below 10 μ\muBq/kg. Both crystallization and detector technologies favor Li2_2MoO4_4, which was selected as a main element for the realization of a CUPID demonstrator (CUPID-0/Mo) with \sim7 kg of 100^{100}Mo

    Rotating lattice single crystal architecture on the surface of glass

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    Defying the requirements of translational periodicity in 3D, rotation of the lattice orientation within an otherwise single crystal provides a new form of solid. Such rotating lattice single (RLS) crystals are found, but only as spherulitic grains too small for systematic characterization or practical application. Here we report a novel approach to fabricate RLS crystal lines and 2D layers of unlimited dimensions via a recently discovered solid-to-solid conversion process using a laser to heat a glass to its crystallization temperature but keeping it below the melting temperature. The proof-of-concept including key characteristics of RLS crystals is demonstrated using the example of Sb(2)S(3) crystals within the Sb-S-I model glass system for which the rotation rate depends on the direction of laser scanning relative to the orientation of initially formed seed. Lattice rotation in this new mode of crystal growth occurs upon crystallization through a well-organized dislocation/disclination structure introduced at the glass/crystal interface. Implications of RLS growth on biomineralization and spherulitic crystal growth are noted
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