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Performance of Small-Pad Resistive Micromegas for operation under high particle flow

Motivated mainly by future upgrades at high-luminosity LHC (HL-LHC) and detectors at future accelerators, most of the HEP R&D; collaborations are focusing on the design of new particle detectors for operation under high particle flow. In the field of Micro-Pattern-Gaseous-Detectors, were designe...

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Autores principales: Alviggi, M G, Camerlingo, M T, Canale, V, Della Pietra, M, Di Donato, C, Iengo, P, Iodice, M, Petrucci, F, Sekhniaidze, G
Lenguaje:eng
Publicado: IEEE 2019
Materias:
Acceso en línea:https://dx.doi.org/10.1109/NSS/MIC42101.2019.9059633
http://cds.cern.ch/record/2729058
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author Alviggi, M G
Camerlingo, M T
Canale, V
Della Pietra, M
Di Donato, C
Iengo, P
Iodice, M
Petrucci, F
Sekhniaidze, G
author_facet Alviggi, M G
Camerlingo, M T
Canale, V
Della Pietra, M
Di Donato, C
Iengo, P
Iodice, M
Petrucci, F
Sekhniaidze, G
author_sort Alviggi, M G
collection CERN
description Motivated mainly by future upgrades at high-luminosity LHC (HL-LHC) and detectors at future accelerators, most of the HEP R&D; collaborations are focusing on the design of new particle detectors for operation under high particle flow. In the field of Micro-Pattern-Gaseous-Detectors, were designed the small-pad resistive Micromegas prototypes, to overcome the limitations of current resistive strip Micromegas chambers. In these new prototypes, pads with 1×3 mm$^2$ area replace the readout strips to reduce the occupancy. The spark protection resistive layer has been redesigned and optimized with different techniques to permit a safe behavior of the detector, at rates of the order of tens MHz/cm$^2$ over large surfaces without efficiency loss. The firstly-developed design exploits a pad-patterned embedded resistor layout made by screen-printing, while the most recent technique involves uniform sputtered DLC (Diamond Like Carbon structure) layers, where the charge evacuates through the several vias connected to the ground. Comparative studies have been conducted on the performance of the detectors with two resistive layouts, and between two DLC prototypes with different pitch of vias and surface resistivity. The results of the tests performed with high intensity X-rays and with high-energy charged particle beams will be presented.
id oai-inspirehep.net-1793747
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2019
publisher IEEE
record_format invenio
spelling oai-inspirehep.net-17937472022-08-17T12:59:22Zdoi:10.1109/NSS/MIC42101.2019.9059633http://cds.cern.ch/record/2729058engAlviggi, M GCamerlingo, M TCanale, VDella Pietra, MDi Donato, CIengo, PIodice, MPetrucci, FSekhniaidze, GPerformance of Small-Pad Resistive Micromegas for operation under high particle flowDetectors and Experimental TechniquesMotivated mainly by future upgrades at high-luminosity LHC (HL-LHC) and detectors at future accelerators, most of the HEP R&D; collaborations are focusing on the design of new particle detectors for operation under high particle flow. In the field of Micro-Pattern-Gaseous-Detectors, were designed the small-pad resistive Micromegas prototypes, to overcome the limitations of current resistive strip Micromegas chambers. In these new prototypes, pads with 1×3 mm$^2$ area replace the readout strips to reduce the occupancy. The spark protection resistive layer has been redesigned and optimized with different techniques to permit a safe behavior of the detector, at rates of the order of tens MHz/cm$^2$ over large surfaces without efficiency loss. The firstly-developed design exploits a pad-patterned embedded resistor layout made by screen-printing, while the most recent technique involves uniform sputtered DLC (Diamond Like Carbon structure) layers, where the charge evacuates through the several vias connected to the ground. Comparative studies have been conducted on the performance of the detectors with two resistive layouts, and between two DLC prototypes with different pitch of vias and surface resistivity. The results of the tests performed with high intensity X-rays and with high-energy charged particle beams will be presented.IEEEoai:inspirehep.net:17937472019
spellingShingle Detectors and Experimental Techniques
Alviggi, M G
Camerlingo, M T
Canale, V
Della Pietra, M
Di Donato, C
Iengo, P
Iodice, M
Petrucci, F
Sekhniaidze, G
Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title_full Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title_fullStr Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title_full_unstemmed Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title_short Performance of Small-Pad Resistive Micromegas for operation under high particle flow
title_sort performance of small-pad resistive micromegas for operation under high particle flow
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1109/NSS/MIC42101.2019.9059633
http://cds.cern.ch/record/2729058
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