RADiCAL—Precision Timing, Ultracompact, Radiation-Hard Electromagnetic Calorimetry

Author:

Anderson Thomas,Barbera Thomas,Cox Bradley,Debbins Paul,Dubnowski Maxwell,Ford Kiva,Herrmann Maxwell,Hu Chen,Jessop Colin,Kamer-Koseyan Ohannes,Ledovskoy Alexander,Onel Yasar,Perez-Lara Carlos,Ruchti RandalORCID,Ruggiero Daniel,Smith Daniel,Vigneault Mark,Wan Yuyi,Wayne Mitchell,Wetzel James,Zhang Liyuan,Zhu Ren-YuanORCID

Abstract

To address the challenges of providing high-performance calorimetry in future hadron collider experiments under conditions of high luminosity and high radiation (FCC-hh environments), we conducted R&D on advanced calorimetry techniques suitable for such operation, based on scintillation and wavelength-shifting technologies and photosensor (SiPM and SiPM-like) technology. In particular, we focused our attention on ultra-compact radiation-hard EM calorimeters based on modular structures (RADiCAL modules) consisting of alternating layers of the very dense absorber and scintillating plates, read out via radiation hard wavelength shifting (WLS) solid fiber or capillary elements to photosensors positioned either proximately or remotely, depending upon their radiation tolerance. RADiCAL modules provide the capability to measure simultaneously and with high precision the position, energy and timing of EM showers. This paper provides an overview of the instrumentation and photosensor R&D associated with the RADiCAL program.

Funder

United States Department of Energy

Unites States National Science Foundation

Publisher

MDPI AG

Subject

Instrumentation

Reference9 articles.

1. Basic Research Needs for High Energy Physics Detector Research & Development

2. RADiCAL—Precision-timing, Ultracompact, Radiation-hard Electromagnetic Calorimetry;Anderson;arXiv,2022

3. Calorimeters for the FCC-hh;Aleksa;arXiv,2019

4. Shashlik Timing;Ledovskoy,2021

5. RADiCAL Studies;Ledovskoy,2021

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