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Design and performance of the prototype Schwarzschild-Couder Telescope camera

  • the CTA SCT Consortium
  • University of Wisconsin-Madison
  • Columbia University
  • INFN Sezione di Perugia
  • INFN Sezione di Napoli
  • c/o DESY
  • Center for Astrophysics | Harvard & Smithsonian
  • University of Perugia
  • Politecnico di Bari
  • INFN Sezione di Bari
  • Istituto Nazionale di Fisica Nucleare, Sezione di Pisa
  • ISASI
  • Washington University in St. Louis
  • Durham University
  • Stanford University
  • Barnard College
  • Case Western Reserve University
  • University of Turin
  • INFN Sezione di Torino
  • California State University - East Bay
  • College of Computing
  • Michigan State University
  • University of California at Santa Cruz
  • SUNY Maritime College
  • University of Palermo
  • INFN Sezione di Catania
  • University of Alabama
  • University of Utah
  • Pennsylvania State University
  • Nagoya University
  • University of Siena
  • INAF Istituto di Astrofisica Spaziale e Fisica Cosmica, Milan
  • University of Leicester
  • National Astronomical Observatory
  • University of California, Los Angeles
  • Universidad Nacional Autónoma de México
  • Science and Research Directorate
  • Max-Planck-Institut für Kernphysik
  • Friedrich-Alexander University (FAU) Erlangen-Nürnberg and Universitätsklinikum Erlangen

Research output: Contribution to journalConference articlepeer-review

Abstract

The Cherenkov Telescope Array (CTA) is the next-generation ground-based observatory for very-high-energy gamma-ray astronomy. An innovative 9.7 m aperture, dual-mirror Schwarzschild-Couder Telescope (SCT) design is a candidate design for CTA Medium-Sized Telescopes. A prototype SCT (pSCT) has been constructed at the Fred Lawrence Whipple Observatory in Arizona, USA. Its camera is currently partially instrumented with 1600 pixels covering a field of view of 2.7 degrees square. The small plate scale of the optical system allows densely packed silicon photomultipliers to be used, which combined with high-density trigger and waveform readout electronics enable the high-resolution camera. The camera's electronics are capable of imaging air shower development at a rate of one billion samples per second. We describe the commissioning and performance of the pSCT camera, including trigger and waveform readout performance, calibration, and absolute GPS time stamping. We also present the upgrade to the camera, which is currently underway. The upgrade will fully populate the focal plane, increasing the field of view to 8 degree diameter, and lower the front-end electronics noise, enabling a lower trigger threshold and improved reconstruction and background rejection.

Original languageEnglish
Article number748
JournalProceedings of Science
Volume395
Publication statusPublished - 18 Mar 2022
Event37th International Cosmic Ray Conference, ICRC 2021 - Virtual, Berlin, Germany
Duration: 12 Jul 202123 Jul 2021

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