English

GALI: a Gamma-ray Burst Localizing Instrument

Instrumentation and Methods for Astrophysics 2021-02-25 v1

Abstract

The detection of astrophysical Gamma-Ray Bursts (GRBs) has always been intertwined with the challenge of identifying the direction of the source. Accurate angular localization of better than a degree has been achieved to date only with heavy instruments on large satellites, and a limited field of view. The recent discovery of the association of GRBs with neutron star mergers gives new motivation for observing the entire γ\gamma-ray sky at once with high sensitivity and accurate directional capability. We present a novel γ\gamma-ray detector concept, which utilizes the mutual occultation between many small scintillators to reconstruct the GRB direction. We built an instrument with 90 (9\,mm)3^3 \csi~scintillator cubes attached to silicon photomultipliers. Our laboratory prototype tested with a 60\,keV source demonstrates an angular accuracy of a few degrees for \sim25 ph\,cm2^{-2} bursts. Simulations of realistic GRBs and background show that the achievable angular localization accuracy with a similar instrument occupying 11l volume is <2<2^\circ. The proposed concept can be easily scaled to fit into small satellites, as well as large missions.

Keywords

Cite

@article{arxiv.2102.12373,
  title  = {GALI: a Gamma-ray Burst Localizing Instrument},
  author = {Roi Rahin and Luca Moleri and Alex Vdovin and Amir Feigenboim and Solomon Margolin and Shlomit Tarem and Ehud Behar and Max Ghelman and Alon Osovizky},
  journal= {arXiv preprint arXiv:2102.12373},
  year   = {2021}
}
R2 v1 2026-06-23T23:28:43.138Z