Across the soft gamma-ray regime: utilizing simultaneous detections in the Compton Spectrometer and Imager (COSI) and the Background and Transient Observer (BTO) to understand astrophysical transients

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Gulick, Hannah C., Neights, Eliza, Nussirat, Samer Al, Chen, Claire Tianyi, Ching, Kaylie, Dove, Cassandra, Joens, Alyson, Kierans, Carolyn, Liu, Hubert, Martinez, Israel, Mician, Tomas, Nagasawa, Shunsaku, Nandyala, Shreya, Schmidtke, Isabel, Shah, Derek, Zoglauer, Andreas, Nakasawa, Kazuhiro, Takahashi, Tadayuki, Oliveros, Juan-Carlos Martinez, Tomsick, John A.
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914928191864832
author Gulick, Hannah C.
Neights, Eliza
Nussirat, Samer Al
Chen, Claire Tianyi
Ching, Kaylie
Dove, Cassandra
Joens, Alyson
Kierans, Carolyn
Liu, Hubert
Martinez, Israel
Mician, Tomas
Nagasawa, Shunsaku
Nandyala, Shreya
Schmidtke, Isabel
Shah, Derek
Zoglauer, Andreas
Nakasawa, Kazuhiro
Takahashi, Tadayuki
Oliveros, Juan-Carlos Martinez
Tomsick, John A.
author_facet Gulick, Hannah C.
Neights, Eliza
Nussirat, Samer Al
Chen, Claire Tianyi
Ching, Kaylie
Dove, Cassandra
Joens, Alyson
Kierans, Carolyn
Liu, Hubert
Martinez, Israel
Mician, Tomas
Nagasawa, Shunsaku
Nandyala, Shreya
Schmidtke, Isabel
Shah, Derek
Zoglauer, Andreas
Nakasawa, Kazuhiro
Takahashi, Tadayuki
Oliveros, Juan-Carlos Martinez
Tomsick, John A.
contents The Compton Spectrometer and Imager (COSI) is a NASA funded Small Explorer (SMEX) mission slated to launch in 2027. COSI will house a wide-field gamma-ray telescope designed to survey the entire sky in the 0.2--5 MeV range. Using germanium detectors, the instrument will provide imaging, spectroscopy, and polarimetry of astrophysical sources with excellent energy resolution and degree-scale localization capabilities. In addition to the main instrument, COSI will fly with a student collaboration project known as the Background and Transient Observer (BTO). BTO will extend the COSI bandpass to energies lower than 200 keV, thus enabling spectral analysis across the shared band of 30 keV--2 MeV range. The BTO instrument will consist of two NaI scintillators and student-designed readout electronics. Using spectral information from both the COSI and BTO instruments, physics such as the energy peak turnover in gamma-ray bursts, the characteristics of magnetar flares, and the event frequency of a range of transient phenomena will be constrained. In this paper, we present the expected science returnables from BTO and comment on the shared returnables from the COSI and BTO missions. We include simulations of gamma-ray bursts, magnetar giant flares, and terrestrial gamma-ray flashes using BTO's spectral response. Additionally, we estimate BTO's gamma-ray burst detection rate and find that BTO will detect ~150 gamma-ray bursts per year, with most of these events being long bursts.
format Preprint
id arxiv_https___arxiv_org_abs_2407_07155
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Across the soft gamma-ray regime: utilizing simultaneous detections in the Compton Spectrometer and Imager (COSI) and the Background and Transient Observer (BTO) to understand astrophysical transients
Gulick, Hannah C.
Neights, Eliza
Nussirat, Samer Al
Chen, Claire Tianyi
Ching, Kaylie
Dove, Cassandra
Joens, Alyson
Kierans, Carolyn
Liu, Hubert
Martinez, Israel
Mician, Tomas
Nagasawa, Shunsaku
Nandyala, Shreya
Schmidtke, Isabel
Shah, Derek
Zoglauer, Andreas
Nakasawa, Kazuhiro
Takahashi, Tadayuki
Oliveros, Juan-Carlos Martinez
Tomsick, John A.
High Energy Astrophysical Phenomena
Instrumentation and Methods for Astrophysics
The Compton Spectrometer and Imager (COSI) is a NASA funded Small Explorer (SMEX) mission slated to launch in 2027. COSI will house a wide-field gamma-ray telescope designed to survey the entire sky in the 0.2--5 MeV range. Using germanium detectors, the instrument will provide imaging, spectroscopy, and polarimetry of astrophysical sources with excellent energy resolution and degree-scale localization capabilities. In addition to the main instrument, COSI will fly with a student collaboration project known as the Background and Transient Observer (BTO). BTO will extend the COSI bandpass to energies lower than 200 keV, thus enabling spectral analysis across the shared band of 30 keV--2 MeV range. The BTO instrument will consist of two NaI scintillators and student-designed readout electronics. Using spectral information from both the COSI and BTO instruments, physics such as the energy peak turnover in gamma-ray bursts, the characteristics of magnetar flares, and the event frequency of a range of transient phenomena will be constrained. In this paper, we present the expected science returnables from BTO and comment on the shared returnables from the COSI and BTO missions. We include simulations of gamma-ray bursts, magnetar giant flares, and terrestrial gamma-ray flashes using BTO's spectral response. Additionally, we estimate BTO's gamma-ray burst detection rate and find that BTO will detect ~150 gamma-ray bursts per year, with most of these events being long bursts.
title Across the soft gamma-ray regime: utilizing simultaneous detections in the Compton Spectrometer and Imager (COSI) and the Background and Transient Observer (BTO) to understand astrophysical transients
topic High Energy Astrophysical Phenomena
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2407.07155