Triangulation Pointing to Core-Collapse Supernovae with Next-Generation Neutrino Detectors
arXiv:1909.03151 · doi:10.1103/PhysRevD.100.103005
Abstract
A core-collapse supernova releases the vast majority of the gravitational binding energy of its compact remnant in the form of neutrinos over an interval of a few tens of seconds. In the event of a core-collapse supernova within our galaxy, multiple current and future neutrino detectors would see a large burst in activity. Neutrinos escape a supernova hours before light does, so any prompt information about the supernova's direction that can be inferred via the neutrino signal will help to enable early electromagnetic observations of the supernova. While there are methods to determine the direction via intrinsic directionality of some neutrino-matter interaction channels, a complementary method which will reach maturity with the next generation of large neutrino detectors is the use of relative neutrino arrival times at different detectors around the globe. To evaluate this triangulation method for realistic detector configurations of the next few decades, we generate random supernova neutrino signals with realistic detector assumptions, and quantify the error in expected time delay between detections. We investigate a practical and robust method of estimating the time differences between burst detections, also correcting for detection efficiency bias. With this method, we determine the pointing precision of supernova neutrino triangulation as a function of supernova distance and location, detectors used, detector background level and neutrino mass ordering assumption. Under favorable conditions, the 1 supernova search area from triangulation could be reduced to a few percent of the sky. It should be possible to implement this method with low latency under realistic conditions.
12 pages, 17 figures
References in corpus (13)
- Multi-messenger Observations of a Binary Neutron Star Merger
- Updated fit to three neutrino mixing: exploring the accelerator-reactor complementarity
- Supernova Neutrino Detection
- The Progenitor Dependence of the Preexplosion Neutrino Emission in Core-Collapse Supernovae
- Neutrinos from Supernovae as a Trigger for Gravitational Wave Search
- Reconstructing the supernova bounce time with neutrinos in IceCube
- Supernova Signatures of Neutrino Mass Ordering
- Comparative analysis of SN1987A antineutrino fluence
- Implication for the core collapse supernova rate from 21 years of data of the Large Volume Detector
- The SuperNova Early Warning System
- Supernova Neutrino Neutrino Astronomy
- Timing the Neutrino Signal of a Galactic Supernova
- Parameter Degeneracy in Flavor-Dependent Reconstruction of Supernova Neutrino Fluxes
Cited by in corpus (16)
- IceCube-Gen2: The Window to the Extreme Universe
- SNEWS 2.0: A Next-Generation SuperNova Early Warning System for Multi-messenger Astronomy
- Exciting Prospects for Detecting Late-Time Neutrinos from Core-Collapse Supernovae
- Timing the Neutrino Signal of a Galactic Supernova
- Theoretical prediction of presupernova neutrinos and their detection
- Searching for Afterglow: Light Dark Matter Boosted by Supernova Neutrinos
- Red Supergiant Candidates for Multimessenger Monitoring of the Next Galactic Supernova
- Combining neutrino experimental light-curves for pointing to the next Galactic Core-Collapse Supernova
- Enhanced low-energy supernova burst detection in large liquid argon time projection chambers enabled by Q-Pix
- Exploiting stellar explosion induced by the QCD phase transition in large-scale neutrino detectors
- Neutrino Echos following Black Hole Formation in Core-Collapse Supernovae
- Timing and Multi-Channel: Novel Method for Determining the Neutrino Mass Ordering from Supernovae
- Supernova Neutrinos: flavour conversion mechanisms and new physics scenarios
- Triangulating Black Hole Forming Stellar Collapses through Neutrinos
- Observing Supernova Neutrino Light Curves with Super-Kamiokande. V. Distance Estimation with Neutrinos
- Status and Perspectives of Neutrino Physics