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Photocathode characterisation for robust PICOSEC Micromegas precise-timing detectors

  • M. Lisowska
  • , R. Aleksan
  • , Y. Angelis
  • , S. Aune
  • , J. Bortfeldt
  • , F. Brunbauer
  • , M. Brunoldi
  • , E. Chatzianagnostou
  • , J. Datta
  • , K. Dehmelt
  • , G. Fanourakis
  • , S. Ferry
  • , D. Fiorina
  • , K. J. Floethner
  • , M. Gallinaro
  • , F. Garcia
  • , I. Giomataris
  • , K. Gnanvo
  • , F. J. Iguaz
  • , D. Janssens
  • A. Kallitsopoulou, M. Kovacic, B. Kross, C. C. Lai, P. Legou, J. Liu, M. Lupberger, I. Maniatis, J. McKisson, Y. Meng, H. Muller, R. De Oliveira, E. Oliveri, G. Orlandini, A. Pandey, T. Papaevangelou, M. Pomorski, M. Robert, L. Ropelewski, D. Sampsonidis, L. Scharenberg, T. Schneider, E. Scorsone, L. Sohl, M. van Stenis, Y. Tsipolitis, S. Tzamarias, A. Utrobicic, I. Vai, R. Veenhof, L. Viezzi, P. Vitulo, C. Volpato, X. Wang, S. White, W. Xi, Z. Zhang, Y. Zhou
  • CERN
  • Université Paris-Saclay
  • Aristotle University of Thessaloniki
  • Center for Interdisciplinary Research and Innovation (CIRI-AUTH)
  • Ludwig Maximilian University of Munich
  • University of Pavia
  • National Institute for Nuclear Physics
  • Demokritos National Centre for Scientific Research
  • University of Bonn
  • Laboratório de Instrumentação e Física Experimental de Partículas
  • University of Helsinki
  • Thomas Jefferson National Accelerator Facility
  • University of Zagreb
  • European Spallation Source ERIC
  • University of Science and Technology of China
  • Friedrich-Alexander University Erlangen-Nürnberg
  • CEA Saclay
  • Queen's University Kingston
  • National Technical University of Athens
  • Ruder Boskovic Institute
  • University of Florence
  • University of Virginia

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

The PICOSEC Micromegas detector is a precise-timing gaseous detector based on a Cherenkov radiator coupled with a semi-transparent photocathode and a Micromegas amplifying structure, targeting a time resolution of tens of picoseconds for minimum ionising particles. Initial single-pad prototypes have demonstrated a time resolution below σ = 25 ps, prompting ongoing developments to adapt the concept for High Energy Physics applications, where sub-nanosecond precision is essential for event separation, improved track reconstruction and particle identification. The achieved performance is being transferred to robust multi-channel detector modules suitable for large-area detection systems requiring excellent timing precision. To enhance the robustness and stability of the PICOSEC Micromegas detector, research on robust carbon-based photocathodes, including Diamond-Like Carbon (DLC) and Boron Carbide (B4C), is pursued. Results from prototypes equipped with DLC and B4C photocathodes exhibited a time resolution of σ ≈ 32 ps and σ ≈ 34.5 ps, respectively. Efforts dedicated to improve detector robustness and stability enhance the feasibility of the PICOSEC Micromegas concept for large experiments, ensuring sustained performance while maintaining excellent timing precision.

Original languageEnglish
Article number170151
JournalNuclear Inst. and Methods in Physics Research, A
Volume1072
DOIs
StatePublished - Mar 2025

Keywords

  • Gaseous detectors
  • Micromegas
  • Photocathodes
  • Timing resolution

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