Improved treatment of the T_2 molecular final-states uncertainties for the KATRIN neutrino-mass measurement

Schneidewind, Sonja; Schürmann, Jannis; Lokhov, Alexey; Weinheimer, Christian; Saenz, Alejandro

Research article (journal) | Peer reviewed

Abstract

The KArlsruhe TRItium Neutrino experiment (KATRIN) aims to determine the effective mass of the electron antineutrino via a high-precision measurement of the tritium β-decay spectrum in its end-point region. The target neutrino-mass sensitivity of 0.2 eV/c2^ at 90% CL can only be achieved in the case of high statistics and good control of the systematic uncertainties. One key systematic effect originates from the calculation of the molecular final states of T_2 β decay. In the first neutrino-mass analyses of KATRIN the contribution of the uncertainty of the molecular finalstates distribution (FSD) was estimated via a conservative phenomenological approach to be 2 × 10^−2 eV^2/c^4. In this work a new procedure is presented for estimating the FSDrelated uncertainties by considering the details of the finalstates calculation, i.e. the uncertainties of constants, parameters, and functions used in the calculation as well as its convergence itself as a function of the basis-set size used in expanding the molecular wave functions. The calculated uncertainties are directly propagated into the experimental observable, the squared neutrino mass m^2_ν , and thus have to be determined individually for each experimental configuration. For the experimental conditions of the first KATRIN measurement campaign the new procedure is presented in detail, allowing for the application of this procedure to other experiments. This specific calculation leads to a constraint of the FSD-related uncertainty of 1.3 × 10^−3 eV^2/c^4, well below the design limit of 7.5×10^−3 eV^2/c^4 for any individual systematic contribution.

Details about the publication

JournalThe European Physical Journal C (EPJC)
Volume84
Page range494null
StatusPublished
Release year2024
Language in which the publication is writtenEnglish
DOI10.1140/epjc/s10052-024-12802-w
Link to the full texthttps://link.springer.com/article/10.1140/epjc/s10052-024-12802-w
KeywordsElectronic final states, ro-vibrational final states, tritium beta decay, neutrino mass, KATRIN experiment

Authors from the University of Münster

Lokhov, Alexej
Professur für Kernphysik (Prof. Weinheimer)
Schneidewind, Sonja
Professur für Kernphysik (Prof. Weinheimer)
Weinheimer, Christian
Professur für Kernphysik (Prof. Weinheimer)