Depth Calibration of Double-sided Strip Germanium Detectors for the Compton Spectrometer and Imager Satellite

Fuente: arXiv
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Autori principali: Rogers, Field R., Pike, Sean N., Alnussirat, Samer, Anthony-Petersen, Robin, Boggs, Steven E., Hagemann, Felix, Haight, Sophia E., Joens, Alyson, Kierans, Carolyn, Lowell, Alexander, Mochizuki, Brent, Shih, Albert Y., Sleator, Clio, Tomsick, John A., Zoglauer, Andreas
Natura: Preprint
Pubblicazione: 2026
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author Rogers, Field R.
Pike, Sean N.
Alnussirat, Samer
Anthony-Petersen, Robin
Boggs, Steven E.
Hagemann, Felix
Haight, Sophia E.
Joens, Alyson
Kierans, Carolyn
Lowell, Alexander
Mochizuki, Brent
Shih, Albert Y.
Sleator, Clio
Tomsick, John A.
Zoglauer, Andreas
author_facet Rogers, Field R.
Pike, Sean N.
Alnussirat, Samer
Anthony-Petersen, Robin
Boggs, Steven E.
Hagemann, Felix
Haight, Sophia E.
Joens, Alyson
Kierans, Carolyn
Lowell, Alexander
Mochizuki, Brent
Shih, Albert Y.
Sleator, Clio
Tomsick, John A.
Zoglauer, Andreas
contents Double-sided strip high-purity germanium detectors with three-dimensional position reconstruction capability have been developed over three decades, with space-based applications in high-energy astrophysics and heliophysics. Position resolution in three dimensions is key to reconstruction of Compton scattering events, including for the upcoming Compton Spectrometer and Imager (COSI) satellite mission. Two-dimensional position reconstruction is enabled by segmentation of the two detector faces into orthogonal strip contacts, enabling a pixelized analysis. The depth of an interaction cannot be measured directly but must be inferred from the charge collection time difference between the two faces of the detector. Here, we demonstrate for the first time the depth calibration of a detector with the COSI satellite geometry read out using an application specific integrated circuit (ASIC) developed for the COSI mission. In this work, we map collection time difference to depth using the Julia-based simulation package SolidStateDetectors$.$jl and validate it with comparison to the timing distributions observed in data. We also use simulations and data to demonstrate the depth resolution on a per-pixel basis, with >90% of pixels having <0.9 mm (FWHM) resolution at 59.5 keV and <0.6 mm (FWHM) resolution at 122.1 keV.
format Preprint
id arxiv_https___arxiv_org_abs_2602_02442
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Depth Calibration of Double-sided Strip Germanium Detectors for the Compton Spectrometer and Imager Satellite
Rogers, Field R.
Pike, Sean N.
Alnussirat, Samer
Anthony-Petersen, Robin
Boggs, Steven E.
Hagemann, Felix
Haight, Sophia E.
Joens, Alyson
Kierans, Carolyn
Lowell, Alexander
Mochizuki, Brent
Shih, Albert Y.
Sleator, Clio
Tomsick, John A.
Zoglauer, Andreas
Instrumentation and Methods for Astrophysics
Instrumentation and Detectors
Double-sided strip high-purity germanium detectors with three-dimensional position reconstruction capability have been developed over three decades, with space-based applications in high-energy astrophysics and heliophysics. Position resolution in three dimensions is key to reconstruction of Compton scattering events, including for the upcoming Compton Spectrometer and Imager (COSI) satellite mission. Two-dimensional position reconstruction is enabled by segmentation of the two detector faces into orthogonal strip contacts, enabling a pixelized analysis. The depth of an interaction cannot be measured directly but must be inferred from the charge collection time difference between the two faces of the detector. Here, we demonstrate for the first time the depth calibration of a detector with the COSI satellite geometry read out using an application specific integrated circuit (ASIC) developed for the COSI mission. In this work, we map collection time difference to depth using the Julia-based simulation package SolidStateDetectors$.$jl and validate it with comparison to the timing distributions observed in data. We also use simulations and data to demonstrate the depth resolution on a per-pixel basis, with >90% of pixels having <0.9 mm (FWHM) resolution at 59.5 keV and <0.6 mm (FWHM) resolution at 122.1 keV.
title Depth Calibration of Double-sided Strip Germanium Detectors for the Compton Spectrometer and Imager Satellite
topic Instrumentation and Methods for Astrophysics
Instrumentation and Detectors
url https://arxiv.org/abs/2602.02442