SNOWMASS WHITE PAPER - SLHC Endcap 1.4<y<4 Hadron Optical Calorimetry Upgrades in CMS with Applications to NLC/T-LEP, Intensity Frontier, and Beyond
Burak Bilki, Yasar Onel, David R. Winn, Taylan Yetkin

TL;DR
This paper proposes radiation-hard calorimeter upgrade options for CMS's endcap region, including new materials and dual readout techniques, to improve performance in high-radiation environments like the LHC and beyond.
Contribution
It introduces novel calorimeter designs using BaF2, quartz, and dual readout methods to enhance radiation resistance and measurement accuracy in high-energy physics experiments.
Findings
Proposed replacement of scintillator tiles with radiation-hard materials.
Development of dual readout calorimeter with combined scintillation and Cherenkov signals.
Potential applications in future collider detectors and intensity frontier experiments.
Abstract
Radiation damage in the plastic scintillator and/or readout WLS fibers in the HE endcap calorimeter 1.4<y<4 in the CMS experiment at LHC and SLHC will require remediation after 2018. We describe one alternative using the existing brass absorber in the Endcap calorimeter, to replace the plastic scintillator tiles with BaF2 tiles, or quartz tiles coated with thin(1-5 micron) films of radiation-hard pTerphenyl(pTP) or the fast phosphor ZnO:Ga. These tiles would be read-out by easily replaceable arrays of straight, parallel WLS fibers coupled to clear plastic-cladded quartz fibers of proven radiation resistance. We describe a second alternative with a new absorber matrix extending to 1.4<y<4 in a novel Analog Particle Flow Cerenkov Compensated Calorimeter, using a dual readout of quartz tiles and scintillating (plastic, BaF2, or pTP/ ZnO:Ga thin film coated quartz, or liquid scintillator)…
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Taxonomy
TopicsParticle Accelerators and Free-Electron Lasers · Superconducting Materials and Applications · Particle Detector Development and Performance
