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Development of a UV laser test bench for micro-pattern gaseous detectors

This work describes the development of a laser test bench for micro-pattern gaseous detectors. The setup is made of a pulsed UV laser of 50 μJ single-pulse energy; the laser beam enters a gaseous detector placed at one end of the bench, it frees electrons by two-photon (or multi-photon) ionization o...

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Autor principal: Pellecchia, Antonello
Lenguaje:eng
Publicado: 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2711733
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author Pellecchia, Antonello
author_facet Pellecchia, Antonello
author_sort Pellecchia, Antonello
collection CERN
description This work describes the development of a laser test bench for micro-pattern gaseous detectors. The setup is made of a pulsed UV laser of 50 μJ single-pulse energy; the laser beam enters a gaseous detector placed at one end of the bench, it frees electrons by two-photon (or multi-photon) ionization of impurities in the gas. The radius, intensity and Rayleigh range of the laser beam can be adjusted with an attenuator and a set of pinholes and lenses to obtain a collimated or a focused beam, in order to control the ionization position and density inside the gas. The setup is validated on a Time Projection GEM (TPG) prototype with a large drift gap (40 mm) to observe the presence of two-photon ionization processes and determine the ionization density as a function of the beam intensity and radius; its future scope of application involves the calibration of a prototype of Fast Timing MPGD (FTM), whose geometry is not suited for testing with more common calibration techniques like those involving X-ray sources.
id cern-2711733
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
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spelling cern-27117332020-03-16T16:14:44Zhttp://cds.cern.ch/record/2711733engPellecchia, AntonelloDevelopment of a UV laser test bench for micro-pattern gaseous detectorsDetectors and Experimental TechniquesThis work describes the development of a laser test bench for micro-pattern gaseous detectors. The setup is made of a pulsed UV laser of 50 μJ single-pulse energy; the laser beam enters a gaseous detector placed at one end of the bench, it frees electrons by two-photon (or multi-photon) ionization of impurities in the gas. The radius, intensity and Rayleigh range of the laser beam can be adjusted with an attenuator and a set of pinholes and lenses to obtain a collimated or a focused beam, in order to control the ionization position and density inside the gas. The setup is validated on a Time Projection GEM (TPG) prototype with a large drift gap (40 mm) to observe the presence of two-photon ionization processes and determine the ionization density as a function of the beam intensity and radius; its future scope of application involves the calibration of a prototype of Fast Timing MPGD (FTM), whose geometry is not suited for testing with more common calibration techniques like those involving X-ray sources.CERN-THESIS-2019-307oai:cds.cern.ch:27117332020-03-01T16:54:42Z
spellingShingle Detectors and Experimental Techniques
Pellecchia, Antonello
Development of a UV laser test bench for micro-pattern gaseous detectors
title Development of a UV laser test bench for micro-pattern gaseous detectors
title_full Development of a UV laser test bench for micro-pattern gaseous detectors
title_fullStr Development of a UV laser test bench for micro-pattern gaseous detectors
title_full_unstemmed Development of a UV laser test bench for micro-pattern gaseous detectors
title_short Development of a UV laser test bench for micro-pattern gaseous detectors
title_sort development of a uv laser test bench for micro-pattern gaseous detectors
topic Detectors and Experimental Techniques
url http://cds.cern.ch/record/2711733
work_keys_str_mv AT pellecchiaantonello developmentofauvlasertestbenchformicropatterngaseousdetectors