{KATRIN}: status and prospects for the neutrino mass and beyond

Aker M, Balzer M, Batzler D, Beglarian A, Behrens J, Berlev A, Besserer U, Biassoni M, Bieringer B, Block F, Bobien S, Bombelli L, Bormann D, Bornschein B, Bornschein L, Böttcher M, Brofferio C, Bruch C, Brunst T, Caldwell TS, Carminati M, Carney RMD, Chilingaryan S, Choi W, Cremonesi O, Debowski K, Descher M, Barrero DD, Doe PJ, Dragoun O, Drexlin G, Edzards F, Eitel K, Ellinger E, Engel R, Enomoto S, Felden A, Fink D, Fiorini C, Formaggio JA, Forstner C, Fränkle FM, Franklin GB, Friedel F, Fulst A, Gauda K, Gavin AS, Gil W, Glück F, Grande A, Grössle R, Gugiatti M, Gumbsheimer R, Hannen V, Hartmann J, Hau{ß}mann N, Helbing K, Hickford S, Hiller R, Hillesheimer D, Hinz D, Höhn T, Houdy T, Huber A, Jansen A, Karl C, Kellerer J, King P, Kleifges M, Klein M, Köhler C, Köllenberger L, Kopmann A, Korzeczek M, Koval{í}}k A, Krasch B, Krause H, Lasserre T, Cascio LL, Lebeda O, Lechner P, Lehnert B, Le TL, Lokhov A, Machatschek M, Malcherek E, Manfrin D, Mark M, Marsteller A, Martin EL, Mazzola E, Melzer C, Mertens S, Mostafa J, Müller K, Nava A, Neumann H, Niemes S, Oelpmann P, Onillon A, Parno DS, Pavan M, Pigliafreddo A, Poon AWP, Poyato JML, Pozzi S, Priester F, Puritscher M, Radford DC, R{á}}li{š}} J, Ramachandran S, Robertson RGH, Rodejohann W, Rodenbeck C, Röllig M, Röttele C, Ry{š}}av{ý}} M, Sack R, Saenz A, Salomon RWJ, Schäfer P, Schimpf L, Schlösser K, Schlösser M, Schlüter L, Schneidewind S, Schrank M, Schütz A, Schwemmer A, Sedlak A, {Š}}ef{č}}{í}}k M, Sibille V, Siegmann D, Slez{á}}k M, Spanier F, Spreng D, Steidl M, Sturm M, Telle HH, Thorne LA, Thümmler T, Titov N, Tkachev I, Trigilio P, Urban K, Valerius K, V{é}}nos D, Hern{á}}ndez APV, Voigt P, Weinheimer C, Welte S, Wendel J, Wiesinger C, Wilkerson JF, Wolf J, Wunderl L, Wüstling S, Wydra J, Xu W, Zadoroghny S, Zeller G

Forschungsartikel (Zeitschrift) | Peer reviewed

Zusammenfassung

The Karlsruhe Tritium Neutrino (KATRIN) experiment is designed to measure a high-precision integral spectrum of the endpoint region of T2 β decay, with the primary goal of probing the absolute mass scale of the neutrino. After a first tritium commissioning campaign in 2018, the experiment has been regularly running since 2019, and in its first two measurement campaigns has already achieved a sub-eV sensitivity. After 1000 days of data-taking, KATRIN’s design sensitivity is 0.2 eV at the 90% confidence level. In this white paper we describe the current status of KATRIN; explore prospects for measuring the neutrino mass and other physics observables, including sterile neutrinos and other beyond-Standard-Model hypotheses; and discuss research-and-development projects that may further improve the KATRIN sensitivity.

Details zur Publikation

FachzeitschriftJournal of Physics G: Nuclear and Particle Physics (J Phys G Nucl Part Phys)
Jahrgang / Bandnr. / Volume49
Ausgabe / Heftnr. / Issue10
Seitenbereich100501-100501
StatusVeröffentlicht
Veröffentlichungsjahr2022
Sprache, in der die Publikation verfasst istEnglisch
DOI10.1088/1361-6471/ac834e
Link zum Volltexthttps://doi.org/10.1088/1361-6471/ac834e
Stichwörterneutrino, neutrino mass, sterile neutrino, tritium beta decay, krypton, beyond standard model

Autor*innen der Universität Münster

Hannen, Volker Michael
Professur für Kernphysik (Prof. Weinheimer)
Weinheimer, Christian
Professur für Kernphysik (Prof. Weinheimer)