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The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications

Photek (U.K.) and the TORCH collaboration are undertaking a three year development program to produce a novel square MCP-PMT for single photon detection. The TORCH detector aims to provide particle identification in the 2–10 GeV/c momentum range, using a Time-of-Flight method based on Cherenkov ligh...

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Detalles Bibliográficos
Autores principales: Conneely, T M, Dijk, M W U van, D'Ambrosio, C, Brook, N, García, L Castillo, Cowie, E N, Cussans, D, Forty, R, Frei, C, Gao, R, Gys, T, Harnew, N, Howorth, J, Lapington, J, Milnes, J, Piedigrossi, D, Slatter, C
Lenguaje:eng
Publicado: 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1748-0221/10/05/C05003
http://cds.cern.ch/record/2162981
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author Conneely, T M
Dijk, M W U van
D'Ambrosio, C
Brook, N
García, L Castillo
Cowie, E N
Cussans, D
Forty, R
Frei, C
Gao, R
Gys, T
Harnew, N
Howorth, J
Lapington, J
Milnes, J
Piedigrossi, D
Slatter, C
author_facet Conneely, T M
Dijk, M W U van
D'Ambrosio, C
Brook, N
García, L Castillo
Cowie, E N
Cussans, D
Forty, R
Frei, C
Gao, R
Gys, T
Harnew, N
Howorth, J
Lapington, J
Milnes, J
Piedigrossi, D
Slatter, C
author_sort Conneely, T M
collection CERN
description Photek (U.K.) and the TORCH collaboration are undertaking a three year development program to produce a novel square MCP-PMT for single photon detection. The TORCH detector aims to provide particle identification in the 2–10 GeV/c momentum range, using a Time-of-Flight method based on Cherenkov light. It is a stand-alone R&D; project with possible application in LHCb, and has been proposed for the LHCb Upgrade. The Microchannel Plate (MCP) detector will provide a single photon timing accuracy of 40 ps, and its development will include the following properties: (i) Long lifetime up to at least 5 C/cm(2), (ii) Multi-anode output with a spatial resolution of 6 mm and 0.4 mm respectively in the horizontal and vertical directions, incorporating a novel charge-sharing technique, (iii) Close packing on two opposing sides with an active area fill factor of 88% in the horizontal direction. Results from simulations modelling the MCP detector performance factoring in the pulse height variation from the detector, NINO threshold levels and potential charge sharing techniques that enhance the position resolution beyond the physical pitch of the pixel layout will be discussed. Also, a novel method of coupling the MCP-PMT output pads using Anisotropic Conductive Film (ACF) will be described. This minimises parasitic input capacitance by allowing very close proximity between the frontend electronics and the MCP detector.
id oai-inspirehep.net-1367467
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
record_format invenio
spelling oai-inspirehep.net-13674672019-09-30T06:29:59Zdoi:10.1088/1748-0221/10/05/C05003http://cds.cern.ch/record/2162981engConneely, T MDijk, M W U vanD'Ambrosio, CBrook, NGarcía, L CastilloCowie, E NCussans, DForty, RFrei, CGao, RGys, THarnew, NHoworth, JLapington, JMilnes, JPiedigrossi, DSlatter, CThe TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applicationsDetectors and Experimental TechniquesPhotek (U.K.) and the TORCH collaboration are undertaking a three year development program to produce a novel square MCP-PMT for single photon detection. The TORCH detector aims to provide particle identification in the 2–10 GeV/c momentum range, using a Time-of-Flight method based on Cherenkov light. It is a stand-alone R&D; project with possible application in LHCb, and has been proposed for the LHCb Upgrade. The Microchannel Plate (MCP) detector will provide a single photon timing accuracy of 40 ps, and its development will include the following properties: (i) Long lifetime up to at least 5 C/cm(2), (ii) Multi-anode output with a spatial resolution of 6 mm and 0.4 mm respectively in the horizontal and vertical directions, incorporating a novel charge-sharing technique, (iii) Close packing on two opposing sides with an active area fill factor of 88% in the horizontal direction. Results from simulations modelling the MCP detector performance factoring in the pulse height variation from the detector, NINO threshold levels and potential charge sharing techniques that enhance the position resolution beyond the physical pitch of the pixel layout will be discussed. Also, a novel method of coupling the MCP-PMT output pads using Anisotropic Conductive Film (ACF) will be described. This minimises parasitic input capacitance by allowing very close proximity between the frontend electronics and the MCP detector.oai:inspirehep.net:13674672015
spellingShingle Detectors and Experimental Techniques
Conneely, T M
Dijk, M W U van
D'Ambrosio, C
Brook, N
García, L Castillo
Cowie, E N
Cussans, D
Forty, R
Frei, C
Gao, R
Gys, T
Harnew, N
Howorth, J
Lapington, J
Milnes, J
Piedigrossi, D
Slatter, C
The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title_full The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title_fullStr The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title_full_unstemmed The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title_short The TORCH PMT: a close packing, multi-anode, long life MCP-PMT for Cherenkov applications
title_sort torch pmt: a close packing, multi-anode, long life mcp-pmt for cherenkov applications
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1088/1748-0221/10/05/C05003
http://cds.cern.ch/record/2162981
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