Study of the time and energy resolution of an ultracompact sampling calorimeter (RADiCAL) module at EM shower maximum over the energy range 25 ≤ E ≤ 150 GeV using scintillation and wavelength shifting technology
- Creators
- Zhu, Renyuan1
- Akgun, Ugur2
- Anderson, Thomas3
- Barbera, Thomas4
- Blend, Dylan5
- Cankocak, Kerem6
- Cerci, Salim7
- Chigurupati, Nehal3
- Cox, Bradley3
- Debbins, Paul5
- Dubnowski, Max3
- Duran, Buse8
- Gul Dincer, Gizem6
- Hatipoglu, Selbi8
- Hos, Ilknur9
- Isildak, Bora7
- Jessop, Colin4
- Kamer Koseyan, Ohannes5
- Karazu Uysal, Ayben7
- Kaynak, Berkan8
- Kurt, Reyhan7
- Ledovskoy, Alexander3
- Mestvirishvili, Alexi5
- Onel, Yasar5
- Ozkorucuklu, Suat8
- Penzo, Aldo5
- Perez Lara, Carlos10, 11
- Potok, Onur8
- Ruchti, Randal4
- Ruggiero, Daniel4
- Sunar Cerci, Deniz7
- Tosun, Ali8
- Vigneault, Mark4
- Wan, Yuyi4
- Wayne, Mitchell4
- Wetzel, James2
- Yetkin, Taylan7
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Zhang, Liyuan1
- Zorbilmez, Caglar8
Abstract
The RADiCAL Collaboration is conducting R&D on precision-timing electromagnetic (EM) calorimetry to address the challenges expected in future collider experiments under conditions of high luminosity and/or high irradiation such as those expected at the FCC-ee and FCC-hh colliding beam facilities. Under development are sampling calorimeter structures known as RADiCAL modules, based on scintillation and wavelength-shifting (WLS) technologies, and read out by SiPM photosensors. The module in the test described here consists of alternating layers of very dense tungsten (W) absorber and scintillating crystal (LYSO:Ce) plates, assembled to a depth of 25 radiation lengths (X0). The scintillation signals produced by the EM showers in the region of EM shower maximum (shower max) are transmitted to SiPM located at the upstream and downstream ends of the module via quartz capillaries which penetrate the full length of the module and which contain either organic DSB1 WLS filaments or ceramic LuAG:Ce WLS filaments positioned within the region of shower max, where the shower energy deposition is greatest. The remaining volume within the capillaries, upstream and downstream of the WLS filaments, is filled and fused with quartz rod to form solid quartz waveguides. Preliminary results are presented of the timing resolution of the RADiCAL module over the energy range 25 GeV ≤ E ≤ 150 GeV using both types of wavelength shifters. The studies were conducted using electron beam in the H2 beamline at CERN, Geneva, Switzerland.
Copyright and License
© The Authors, published by EDP Sciences, 2025. This is an Open Access article distributed under the terms of the Creative Commons Attribution License 4.0, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Supplemental Material
Conference presentation slides: CALOR 2024 RADiCAL v2_ryz.pdf
Acknowledgement
We thank SPS Coordination at CERN for providing the excellent beam operation and support during the experimental run in the H2 beamline at the CERN/Prevessin site. We thank the Notre Dame Radiation Laboratory Glass Shop for the expert fabrication of the wavelength shifting capillaries. This work has been supported in part by a US Department of Energy grant DE-SC0017810, the US National Science Foundation under grant NSF-PHY1914059, the University of Notre Dame through its resilience and Recovery Grant Program, and QuarkNet for high school teacher and student participation.
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Additional details
- United States Department of Energy
- DE-SC0017810
- National Science Foundation
- NSF-PHY1914059
- Available
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2025-03-07Published online
- Caltech groups
- Division of Physics, Mathematics and Astronomy (PMA)
- Publication Status
- Published