Literature DB >> 31019319

Observation of two-neutrino double electron capture in 124Xe with XENON1T.

.   

Abstract

Two-neutrino double electron capture (2νECEC) is a second-order weak-interaction process with a predicted half-life that surpasses the age of the Universe by many orders of magnitude1. Until now, indications of 2νECEC decays have only been seen for two isotopes2-5, 78Kr and 130Ba, and instruments with very low background levels are needed to detect them directly with high statistical significance6,7. The 2νECEC half-life is an important observable for nuclear structure models8-14 and its measurement represents a meaningful step in the search for neutrinoless double electron capture-the detection of which would establish the Majorana nature of the neutrino and would give access to the absolute neutrino mass15-17. Here we report the direct observation of 2νECEC in 124Xe with the XENON1T dark-matter detector. The significance of the signal is 4.4 standard deviations and the corresponding half-life of 1.8 × 1022 years (statistical uncertainty, 0.5 × 1022 years; systematic uncertainty, 0.1 × 1022 years) is the longest measured directly so far. This study demonstrates that the low background and large target mass of xenon-based dark-matter detectors make them well suited for measuring rare processes and highlights the broad physics reach of larger next-generation experiments18-20.

Entities:  

Year:  2019        PMID: 31019319     DOI: 10.1038/s41586-019-1124-4

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  3 in total

1.  Material radiopurity control in the XENONnT experiment.

Authors:  E Aprile; K Abe; F Agostini; S Ahmed Maouloud; M Alfonsi; L Althueser; E Angelino; J R Angevaare; V C Antochi; D Antón Martin; F Arneodo; L Baudis; A L Baxter; L Bellagamba; R Biondi; A Bismark; A Brown; S Bruenner; G Bruno; R Budnik; C Capelli; J M R Cardoso; D Cichon; B Cimmino; M Clark; A P Colijn; J Conrad; J J Cuenca-García; J P Cussonneau; V D'Andrea; M P Decowski; P Di Gangi; S Di Pede; A Di Giovanni; R Di Stefano; S Diglio; A Elykov; S Farrell; A D Ferella; H Fischer; W Fulgione; P Gaemers; R Gaior; M Galloway; F Gao; R Glade-Beucke; L Grandi; J Grigat; A Higuera; C Hils; K Hiraide; L Hoetzsch; J Howlett; M Iacovacci; Y Itow; J Jakob; F Joerg; N Kato; P Kavrigin; S Kazama; M Kobayashi; G Koltman; A Kopec; H Landsman; R F Lang; L Levinson; I Li; S Liang; S Lindemann; M Lindner; K Liu; F Lombardi; J Long; J A M Lopes; Y Ma; C Macolino; J Mahlstedt; A Mancuso; L Manenti; A Manfredini; F Marignetti; T Marrodán Undagoitia; K Martens; J Masbou; D Masson; E Masson; S Mastroianni; M Messina; K Miuchi; K Mizukoshi; A Molinario; S Moriyama; K Morå; Y Mosbacher; M Murra; K Ni; U Oberlack; J Palacio; R Peres; J Pienaar; M Pierre; V Pizzella; G Plante; J Qi; J Qin; D Ramírez García; S Reichard; A Rocchetti; N Rupp; L Sanchez; J M F Dos Santos; G Sartorelli; J Schreiner; D Schulte; H Schulze Eißing; M Schumann; L Scotto Lavina; M Selvi; F Semeria; P Shagin; E Shockley; M Silva; H Simgen; A Takeda; P L Tan; A Terliuk; C Therreau; D Thers; F Toschi; G Trinchero; C Tunnell; F Tönnies; K Valerius; G Volta; Y Wei; C Weinheimer; M Weiss; D Wenz; J Westermann; C Wittweg; T Wolf; Z Xu; M Yamashita; L Yang; J Ye; L Yuan; G Zavattini; Y Zhang; M Zhong; T Zhu; J P Zopounidis; M Laubenstein; S Nisi
Journal:  Eur Phys J C Part Fields       Date:  2022-07-08       Impact factor: 4.991

2.  Domain-Informed Neural Networks for Interaction Localization Within Astroparticle Experiments.

Authors:  Shixiao Liang; Aaron Higuera; Christina Peters; Venkat Roy; Waheed U Bajwa; Hagit Shatkay; Christopher D Tunnell
Journal:  Front Artif Intell       Date:  2022-06-09

Review 3.  Low Entropy Future Boundary Conditions.

Authors:  Lawrence S Schulman
Journal:  Entropy (Basel)       Date:  2022-07-14       Impact factor: 2.738

  3 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.