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Characterization of the low energy excess using a NUCLEUS Al2O3 detector: NEXT Collaboration

  • H. Abele
  • , G. Angloher
  • , B. Arnold
  • , M. Atzori Corona
  • , A. Bento
  • , E. Bossio
  • , F. Buchsteiner
  • , J. Burkhart
  • , F. Cappella
  • , M. Cappelli
  • , N. Casali
  • , R. Cerulli
  • , A. Cruciani
  • , G. Del Castello
  • , M. del Gallo Roccagiovine
  • , S. Dorer
  • , A. Erhart
  • , M. Friedl
  • , S. Fichtinger
  • , V. M. Ghete
  • M. Giammei, C. Goupy, J. Hakenmüller, D. Hauff, F. Jeanneau, E. Jericha, M. Kaznacheeva, H. Kluck, A. Langenkämper, T. Lasserre, D. Lhuillier, M. Mancuso, R. Martin, B. Mauri, A. Mazzolari, L. McCallin, H. Neyrial, C. Nones, L. Oberauer, L. Peters, F. Petricca, W. Potzel, F. Pröbst, F. Pucci, F. Reindl, M. Romagnoni, J. Rothe, N. Schermer, J. Schieck, S. Schönert, C. Schwertner, L. Scola, G. Soum-Sidikov, L. Stodolsky, A. Schröder, R. Strauss, R. Thalmeier, C. Tomei, L. Valla, M. Vignati, M. Vivier, A. Wallach, P. Wasser, A. Wex, L. Wienke
  • Technische Universität Wien
  • Max-Planck-Institut für Physik
  • Center for Molecular Medicine of the Austrian Academy of Sciences
  • INFN Sezione di Roma Tor Vergata
  • Coimbra University Pó lo II
  • University Paris-Sud
  • Sezione INFN di Roma La Sapienza
  • Universita La Sapienza
  • Technical University of Munich
  • University of Rome Tor Vergata
  • Max-Planck-Institut für Kernphysik
  • University of Ferrara
  • Sezione INFN di Ferrara
  • Kiutra GmbH

Research output: Contribution to journalArticlepeer-review

Abstract

The NUCLEUS experiment aims to detect coherent elastic neutrino–nucleus scattering of reactor antineutrinos using low-threshold, gram-scale cryogenic calorimeters. Similar to other low-threshold experiments, NUCLEUS observes a sharp rise in the event rate below a few hundred eV, referred to as the low energy excess (LEE), whose origin remains yet unidentified. Building on results from the NUCLEUS testing and commissioning at the Technical University of Munich and from previous characterization campaigns, we present a comprehensive study of the background rate measured with a sapphire detector equipped with two transition-edge sensors under various experimental conditions. We find no evidence for a dependence of the LEE rate on the particle background level, whereas the results indicate that slower cooling-down procedures lead to lower initial LEE rates. The behavior of the LEE rate during the same cooldown is comparable across the measurements and is best described by a power law with a common exponent across datasets of (-0.59±0.06), when time is expressed from the moment the detector reaches the 4 K temperature. These findings provide valuable guidance for future LEE mitigation strategies in the NUCLEUS experiment.

Original languageEnglish
Article number831
JournalEuropean Physical Journal C
Volume86
Issue number7
DOIs
StatePublished - Jul 2026

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