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Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector

The MIP Timing Detector will provide additional timing capabilities for detection of minimum ionizing particles (MIPs) at CMS during the High Luminosity LHC era, improving event reconstruction and pileup rejection. The central portion of the detector, the Barrel Timing Layer (BTL), will be instrumen...

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Autor principal: CMS MTD collaboration
Lenguaje:eng
Publicado: 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2764410
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author CMS MTD collaboration
author_facet CMS MTD collaboration
author_sort CMS MTD collaboration
collection CERN
description The MIP Timing Detector will provide additional timing capabilities for detection of minimum ionizing particles (MIPs) at CMS during the High Luminosity LHC era, improving event reconstruction and pileup rejection. The central portion of the detector, the Barrel Timing Layer (BTL), will be instrumented with LYSO:Ce crystals and Silicon Photomultipliers (SiPMs) providing a time resolution of about 30~ps at the beginning of operation, and degrading to 50-60~ps at the end of the detector lifetime as a result of radiation damage. In this work, we present the results obtained using a 120~GeV proton beam at the Fermilab Test Beam Facility to measure the time resolution of unirradiated sensors. A proof-of-concept of the sensor layout proposed for the barrel region of the MTD, consisting of elongated crystal bars with dimensions of about $3\times3\times57$~mm$^3$ and with double-ended SiPM readout, is demonstrated. This design provides a robust time measurement independent of the impact point of the MIP along the crystal bar. We tested LYSO:Ce bars of different thickness (2, 3, 4~mm) with a geometry close to the reference design and coupled to SiPMs manufactured by Hamamatsu and Fondazione Bruno Kessler. The various aspects influencing the timing performance such as the crystal thickness, properties of the SiPMs (e.g. photon detection efficiency), and impact angle of the MIP are studied. A time resolution of about 28~ps is measured for MIPs crossing a 3~mm thick crystal bar, corresponding to an MPV energy deposition of 2.6~MeV, and of 22~ps for the 4.2 MeV MPV energy deposition expected in the BTL, matching the detector performance target for unirradiated devices.
id cern-2764410
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling cern-27644102021-04-15T19:16:01Zhttp://cds.cern.ch/record/2764410engCMS MTD collaborationTest beam characterization of sensor prototypes for the CMS Barrel MIP Timing DetectorDetectors and Experimental TechniquesThe MIP Timing Detector will provide additional timing capabilities for detection of minimum ionizing particles (MIPs) at CMS during the High Luminosity LHC era, improving event reconstruction and pileup rejection. The central portion of the detector, the Barrel Timing Layer (BTL), will be instrumented with LYSO:Ce crystals and Silicon Photomultipliers (SiPMs) providing a time resolution of about 30~ps at the beginning of operation, and degrading to 50-60~ps at the end of the detector lifetime as a result of radiation damage. In this work, we present the results obtained using a 120~GeV proton beam at the Fermilab Test Beam Facility to measure the time resolution of unirradiated sensors. A proof-of-concept of the sensor layout proposed for the barrel region of the MTD, consisting of elongated crystal bars with dimensions of about $3\times3\times57$~mm$^3$ and with double-ended SiPM readout, is demonstrated. This design provides a robust time measurement independent of the impact point of the MIP along the crystal bar. We tested LYSO:Ce bars of different thickness (2, 3, 4~mm) with a geometry close to the reference design and coupled to SiPMs manufactured by Hamamatsu and Fondazione Bruno Kessler. The various aspects influencing the timing performance such as the crystal thickness, properties of the SiPMs (e.g. photon detection efficiency), and impact angle of the MIP are studied. A time resolution of about 28~ps is measured for MIPs crossing a 3~mm thick crystal bar, corresponding to an MPV energy deposition of 2.6~MeV, and of 22~ps for the 4.2 MeV MPV energy deposition expected in the BTL, matching the detector performance target for unirradiated devices.CMS-NOTE-2021-003CERN-CMS-NOTE-2021-003oai:cds.cern.ch:27644102020-12-09
spellingShingle Detectors and Experimental Techniques
CMS MTD collaboration
Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title_full Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title_fullStr Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title_full_unstemmed Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title_short Test beam characterization of sensor prototypes for the CMS Barrel MIP Timing Detector
title_sort test beam characterization of sensor prototypes for the cms barrel mip timing detector
topic Detectors and Experimental Techniques
url http://cds.cern.ch/record/2764410
work_keys_str_mv AT cmsmtdcollaboration testbeamcharacterizationofsensorprototypesforthecmsbarrelmiptimingdetector