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Understanding avalanches in a Micromegas from single-electron response measurement
Avalanche fluctuations set a limit to the energy and position resolutions that can be reached by gaseous detectors. This paper presents a method based on a laser test-bench to measure the absolute gain and the relative gain variance of a Micro-Pattern Gaseous Detector from its single-electron respon...
Autores principales: | , , , , , , , , , , |
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Lenguaje: | eng |
Publicado: |
2015
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1016/j.nima.2014.11.014 http://cds.cern.ch/record/2153708 |
_version_ | 1780950640791388160 |
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author | Zerguerras, T Genolini, B Kuger, F Josselin, M Maroni, A Nguyen-Trung, T Pouthas, J Rosier, P Şahin, Ö Suzuki, D Veenhof, R |
author_facet | Zerguerras, T Genolini, B Kuger, F Josselin, M Maroni, A Nguyen-Trung, T Pouthas, J Rosier, P Şahin, Ö Suzuki, D Veenhof, R |
author_sort | Zerguerras, T |
collection | CERN |
description | Avalanche fluctuations set a limit to the energy and position resolutions that can be reached by gaseous detectors. This paper presents a method based on a laser test-bench to measure the absolute gain and the relative gain variance of a Micro-Pattern Gaseous Detector from its single-electron response. A Micromegas detector was operated with three binary gas mixtures, composed of 5% isobutane as a quencher, with argon, neon or helium, at atmospheric pressure. The anode signals were read out by low-noise, high-gain Cremat CR-110 charge preamplifiers to enable single-electron detection down to gain of 5× 10 3 for the first time. The argon mixture shows the lowest gain at a given amplification field together with the lowest breakdown limit, which is at a gain of 2×10 4 an order of magnitude lower than that of neon or helium. For each gas, the relative gain variance f is almost unchanged in the range of amplification field studied. It was found that f is twice higher ( f ~0.6) in argon than in the two other mixtures. This hierarchy of gain and relative gain variance agrees with predictions of analytic models, based on gas ionisation yields, and a Monte-Carlo model included in the simulation software Magboltz version 10.1. |
id | oai-inspirehep.net-1331510 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2015 |
record_format | invenio |
spelling | oai-inspirehep.net-13315102022-08-10T13:07:20Zdoi:10.1016/j.nima.2014.11.014http://cds.cern.ch/record/2153708engZerguerras, TGenolini, BKuger, FJosselin, MMaroni, ANguyen-Trung, TPouthas, JRosier, PŞahin, ÖSuzuki, DVeenhof, RUnderstanding avalanches in a Micromegas from single-electron response measurementDetectors and Experimental TechniquesAvalanche fluctuations set a limit to the energy and position resolutions that can be reached by gaseous detectors. This paper presents a method based on a laser test-bench to measure the absolute gain and the relative gain variance of a Micro-Pattern Gaseous Detector from its single-electron response. A Micromegas detector was operated with three binary gas mixtures, composed of 5% isobutane as a quencher, with argon, neon or helium, at atmospheric pressure. The anode signals were read out by low-noise, high-gain Cremat CR-110 charge preamplifiers to enable single-electron detection down to gain of 5× 10 3 for the first time. The argon mixture shows the lowest gain at a given amplification field together with the lowest breakdown limit, which is at a gain of 2×10 4 an order of magnitude lower than that of neon or helium. For each gas, the relative gain variance f is almost unchanged in the range of amplification field studied. It was found that f is twice higher ( f ~0.6) in argon than in the two other mixtures. This hierarchy of gain and relative gain variance agrees with predictions of analytic models, based on gas ionisation yields, and a Monte-Carlo model included in the simulation software Magboltz version 10.1.oai:inspirehep.net:13315102015 |
spellingShingle | Detectors and Experimental Techniques Zerguerras, T Genolini, B Kuger, F Josselin, M Maroni, A Nguyen-Trung, T Pouthas, J Rosier, P Şahin, Ö Suzuki, D Veenhof, R Understanding avalanches in a Micromegas from single-electron response measurement |
title | Understanding avalanches in a Micromegas from single-electron response measurement |
title_full | Understanding avalanches in a Micromegas from single-electron response measurement |
title_fullStr | Understanding avalanches in a Micromegas from single-electron response measurement |
title_full_unstemmed | Understanding avalanches in a Micromegas from single-electron response measurement |
title_short | Understanding avalanches in a Micromegas from single-electron response measurement |
title_sort | understanding avalanches in a micromegas from single-electron response measurement |
topic | Detectors and Experimental Techniques |
url | https://dx.doi.org/10.1016/j.nima.2014.11.014 http://cds.cern.ch/record/2153708 |
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