English

A deuterated liquid scintillator for supernova neutrino detection

High Energy Physics - Phenomenology 2022-12-06 v3 Solar and Stellar Astrophysics High Energy Physics - Experiment

Abstract

For the next galactic supernova, operational neutrino telescopes will measure the neutrino flux several hours before their optical counterparts. Existing detectors, relying mostly on charged current interactions, are mostly sensitive to νˉe\bar{\nu}_e and to a lesser extent to νe\nu_e. In order to measure the flux of other flavors (νμ,νˉμ,ντ,and νˉτ\nu_{\mu},\bar{\nu}_{\mu},\nu_{\tau},\text{and}~\bar{\nu}_{\tau}), we need to observe their neutral current interactions with the detector. Such a measurement is not only crucial for overall normalization of the supernova neutrino flux but also for understanding the intricate neutrino oscillation physics. A deuterium based detector will be sensitive to all neutrino flavors. In this paper, we propose a 1 kton deuterated liquid scintillator (DLS) based detector that will see about 435 neutral current events and 170 (108) charged current νe\nu_e (νˉe\bar{\nu}_e) events from a fiducial supernova at a distance of 10 kpc from Earth. We explore the possibility of extracting spectral information from the neutral current channel ν()dν()np\overset{\scriptscriptstyle(-)}{\nu} d \rightarrow \overset{\scriptscriptstyle(-)}{\nu}np by measuring the quenched kinetic energy of the proton in the final state, where the neutron in the final state is tagged and used to reduce backgrounds. We also discuss the secondary interactions of the recoil neutrons in the detector.

Keywords

Cite

@article{arxiv.2106.10927,
  title  = {A deuterated liquid scintillator for supernova neutrino detection},
  author = {Bhavesh Chauhan and Basudeb Dasgupta and Vivek Datar},
  journal= {arXiv preprint arXiv:2106.10927},
  year   = {2022}
}

Comments

37 pages, 13 figures; expanded discussion on secondary interactions