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The CMS HGCAL detector for HL-LHC upgrade

1 Pith paper cite this work. Polarity classification is still indexing.

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abstract

The High Luminosity LHC (HL-LHC) will integrate 10 times more luminosity than the LHC, posing significant challenges for radiation tolerance and event pileup on detectors, especially for forward calorimetry, and hallmarks the issue for future colliders. As part of its HL-LHC upgrade program, the CMS collaboration is designing a High Granularity Calorimeter to replace the existing endcap calorimeters. It features unprecedented transverse and longitudinal segmentation for both electromagnetic (ECAL) and hadronic (HCAL) compartments. This will facilitate particle-flow calorimetry, where the fine structure of showers can be measured and used to enhance pileup rejection and particle identification, whilst still achieving good energy resolution. The ECAL and a large fraction of HCAL will be based on hexagonal silicon sensors of 0.5-1cm$^{2}$ cell size, with the remainder of the HCAL based on highly-segmented scintillators with SiPM readout. The intrinsic high-precision timing capabilities of the silicon sensors will add an extra dimension to event reconstruction, especially in terms of pileup rejection. An overview of the HGCAL project is presented, covering motivation, engineering design, readout and trigger concepts, and performance (simulated and from beam tests).

years

2019 1

verdicts

CONDITIONAL 1

representative citing papers

Photon Reconstruction Performance at the CEPC baseline detector

physics.ins-det · 2019-08-24 · conditional · novelty 5.0

Using full simulation, the CEPC baseline detector reconstructs isolated photons with over 99% efficiency and purity above 1 GeV, reaching a 2.2% H to gamma gamma mass resolution after a geometry-based correction.

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  • Photon Reconstruction Performance at the CEPC baseline detector physics.ins-det · 2019-08-24 · conditional · none · ref 21 · internal anchor

    Using full simulation, the CEPC baseline detector reconstructs isolated photons with over 99% efficiency and purity above 1 GeV, reaching a 2.2% H to gamma gamma mass resolution after a geometry-based correction.