Benchmarking of Geant4 simulations for the COSI Anticoincidence System

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Main Authors: Ciabattoni, Alex, Fioretti, Valentina, Tomsick, John A., Zoglauer, Andreas, Patel, Parshad, Mitchell, Lee, Bulgarelli, Andrea, Jean, Pierre, Panebianco, Gabriele, Parmiggiani, Nicolò, Vignali, Cristian, von Ballmoos, Peter, Wulf, Eric
Format: Preprint
Published: 2025
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author Ciabattoni, Alex
Fioretti, Valentina
Tomsick, John A.
Zoglauer, Andreas
Patel, Parshad
Mitchell, Lee
Bulgarelli, Andrea
Jean, Pierre
Panebianco, Gabriele
Parmiggiani, Nicolò
Vignali, Cristian
von Ballmoos, Peter
Wulf, Eric
author_facet Ciabattoni, Alex
Fioretti, Valentina
Tomsick, John A.
Zoglauer, Andreas
Patel, Parshad
Mitchell, Lee
Bulgarelli, Andrea
Jean, Pierre
Panebianco, Gabriele
Parmiggiani, Nicolò
Vignali, Cristian
von Ballmoos, Peter
Wulf, Eric
contents The Compton Spectrometer and Imager (COSI) is an upcoming NASA Small Explorer satellite mission, designed for all-sky observations in the soft gamma-ray domain with the use of germanium detectors (GeDs). An active Anticoincidence System (ACS) of BGO scintillators surrounds the GeDs to reduce the background and contribute to the detection of transient events. Accurately modeling the ACS performance requires simulating the intricate scintillation processes within the shields, which significantly increases the computational cost. We have encoded these effects into a correction matrix derived from dedicated Geant4 simulations with the inclusion of the optical physics. For this purpose, we use laboratory measurements for the energy and spatial response of the ACS lateral wall to benchmark the simulation and define instrument parameters, including the BGO absorption length and the electronic noise. We demonstrate that the simulations replicate the experimental energy resolution and light collection uniformity along the BGO crystal, with maximum discrepancies of 20% and 10%, respectively. The validated simulations are then used to develop the correction matrix for the lateral wall, accounting for the light collection efficiency and energy resolution based on the position within the crystal. The gamma-ray quantum detection efficiency is also position-dependent via the inclusion of the optical physics. It is enhanced by $\sim$8% close to the SiPMs and suppressed by $\sim$2% in the adjacent corners with respect to the average value. Finally, we explore the energy threshold and resolution of the bottom ACS, considering the impact of its smaller crystals compared with the lateral walls.
format Preprint
id arxiv_https___arxiv_org_abs_2507_21275
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Benchmarking of Geant4 simulations for the COSI Anticoincidence System
Ciabattoni, Alex
Fioretti, Valentina
Tomsick, John A.
Zoglauer, Andreas
Patel, Parshad
Mitchell, Lee
Bulgarelli, Andrea
Jean, Pierre
Panebianco, Gabriele
Parmiggiani, Nicolò
Vignali, Cristian
von Ballmoos, Peter
Wulf, Eric
Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
The Compton Spectrometer and Imager (COSI) is an upcoming NASA Small Explorer satellite mission, designed for all-sky observations in the soft gamma-ray domain with the use of germanium detectors (GeDs). An active Anticoincidence System (ACS) of BGO scintillators surrounds the GeDs to reduce the background and contribute to the detection of transient events. Accurately modeling the ACS performance requires simulating the intricate scintillation processes within the shields, which significantly increases the computational cost. We have encoded these effects into a correction matrix derived from dedicated Geant4 simulations with the inclusion of the optical physics. For this purpose, we use laboratory measurements for the energy and spatial response of the ACS lateral wall to benchmark the simulation and define instrument parameters, including the BGO absorption length and the electronic noise. We demonstrate that the simulations replicate the experimental energy resolution and light collection uniformity along the BGO crystal, with maximum discrepancies of 20% and 10%, respectively. The validated simulations are then used to develop the correction matrix for the lateral wall, accounting for the light collection efficiency and energy resolution based on the position within the crystal. The gamma-ray quantum detection efficiency is also position-dependent via the inclusion of the optical physics. It is enhanced by $\sim$8% close to the SiPMs and suppressed by $\sim$2% in the adjacent corners with respect to the average value. Finally, we explore the energy threshold and resolution of the bottom ACS, considering the impact of its smaller crystals compared with the lateral walls.
title Benchmarking of Geant4 simulations for the COSI Anticoincidence System
topic Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2507.21275