Dy electron-capture: a strong new candidate for neutrino mass determination
arXiv:2106.06626 · doi:10.1103/PhysRevLett.127.272301
Abstract
{ The ground-state to ground-state electron-capture value of Dy () has been measured directly utilizing the double Penning trap mass spectrometer JYFLTRAP. A value of 364.73(19)~keV was obtained from a measurement of the cyclotron frequency ratio of the decay parent Dy and the decay daughter Tb ions using the novel phase-imaging ion-cyclotron resonance technique. The values for allowed Gamow-Teller transition to and the third-forbidden unique transition to state with excitation energies of 363.5449(14)~keV and 362.050(40)~keV in Tb were determined to be 1.18(19) keV and 2.68(19) keV, respectively. The high-precision value of transition from this work, revealing itself as the lowest electron-capture value, is utilized to unambiguously characterise all the possible lines that are present in its electron capture spectrum. { We performed atomic many-body calculations for both transitions to determine electron-capture probabilities from various atomic orbitals, and found an order of magnitude enhancement in the event rates near the end-point of energy spectrum in the transition to the nuclear excited state, which can become very interesting once the experimental challenges of identifying decays into excited states are overcome. The transition to the state is strongly suppressed and found unsuitable for measuring the neutrino mass. These results show that the electron capture in the Dy atom, going to the state of the Tb nucleus, %\textcolor{red} {is a new candidate which may open the way to determine the electron-neutrino mass in the sub-eV region by studying EC. Further experimental feasibility studies, including coincidence measurements with realistic detectors, will be of great interest.} }
6 pages, 2 figures
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