Nuclear Recoil-Gamma Coincidence Spectroscopy in 7Be EC Decay using Superconducting Sensors
ORAL
Abstract
Precision measurements of the $^7$Li recoil energy from electron capture (EC) decay of $^7$Be in superconducting tunnel junction (STJ) sensors currently provide the most stringent limits on sub-MeV heavy neutrino mass states, and access to the quantum nature of the neutrino. However, in 10\% of $^7$Be EC decays, a 478 keV excited state in $^7$Li is populated with a half-life of 74 fs. Using an array of high-efficiency NaI detectors surrounding the low-temperature stage of an adiabatic demagnetization refrigerator, we have measured the 478 keV $\gamma$-ray in coincidence with the $\sim$11~eV $^7$Li nuclear recoil signal in the STJs. Given that the excited-state half-life is of the same order as the slow-down time of the recoil in the material, we have been able to extract the shape of the nuclear recoil Doppler profile. The high precision of the measurement enables testing molecular dynamics simulations and conventional models of nuclear slow-down at $\lesssim$ 11 eV, as well as characterizing the dominant spectral background in the BeEST experiment. This talk will present the first direct nuclear recoil-$\gamma$ coincidence measurement in EC decay and analysis of the stopping power profile.
*The BeEST experiment is funded in part by the Gordon and Betty Moore Foundation (10.37807/GBMF11571), the DOE-SC Office of Nuclear Physics under Award Numbers DE-SC0021245 and DE-FG02-93ER40789, and the LLNL Laboratory Directed Research and Development program through Grants No. 19-FS-027 and No. 20-LW-006. TRIUMF receives federal funding via a contribution agreement with the National Research Council of Canada. The theoretical work was performed as part of the European Metrology Programme for Innovation and Research (EMPIR) Projects No. 17FUN02 MetroMMC and No. 20FUN09 PrimA-LTD. This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract No. DE-AC52- 07NA27344.