keV-Scale Sterile Neutrino Sensitivity Estimation with Time-Of-Flight Spectroscopy in KATRIN using Self-Consistent Approximate Monte Carlo
arXiv:1710.04939 · doi:10.1140/epjc/s10052-018-5656-9
Abstract
We investigate the sensitivity of the Karlsruhe Tritium Neutrino Experiment (KATRIN) to keV-scale sterile neutrinos, which are promising dark matter candidates. Since the active-sterile mixing would lead to a second component in the tritium -spectrum with a weak relative intensity of order , additional experimental strategies are required to extract this small signature and to eliminate systematics. A possible strategy is to run the experiment in an alternative time-of-flight (TOF) mode, yielding differential TOF spectra in contrast to the integrating standard mode. In order to estimate the sensitivity from a reduced sample size, a new analysis method, called self-consistent approximate Monte Carlo (SCAMC), has been developed. The simulations show that an ideal TOF mode would be able to achieve a statistical sensitivity of at one , improving the standard mode by approximately a factor two. This relative benefit grows significantly if additional exemplary systematics are considered. A possible implementation of the TOF mode with existing hardware, called gated filtering, is investigated, which, however, comes at the price of a reduced average signal rate.
14 pages, 15 figures, major revision
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Cited by in corpus (5)
- Sterile Neutrino Dark Matter
- The Design, Construction, and Commissioning of the KATRIN Experiment
- Beta and Neutrinoless Double Beta Decays with KeV Sterile Fermions
- Background reduction at the KATRIN experiment by the shifted analysing plane configuration
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