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Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum

The quantum efficiency of a Burle 8850 photomultiplier tube with a potassium-caesium-antimony (bialkali) photocathode was determined by attenuating a 1 mW HeNe laser emitting at 633 nm and measuring the signal frequency when the laser was incident on the photomultiplier. A temperature range of 5 $^{...

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Autor principal: Clawson, Savannah Ellen
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:http://cds.cern.ch/record/2278277
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author Clawson, Savannah Ellen
author_facet Clawson, Savannah Ellen
author_sort Clawson, Savannah Ellen
collection CERN
description The quantum efficiency of a Burle 8850 photomultiplier tube with a potassium-caesium-antimony (bialkali) photocathode was determined by attenuating a 1 mW HeNe laser emitting at 633 nm and measuring the signal frequency when the laser was incident on the photomultiplier. A temperature range of 5 $^{\circ}$C $-$ 20 $^{\circ}$C was investigated and it was found that the quantum efficiency decreases with temperature, with the signal frequency decreasing at a faster rate than the dark current frequency. Therefore, it was concluded that it would not be beneficial to cool photomultiplier tubes operating in the visible spectrum for use in collinear laser spectroscopy due to a decreasing signal-to-noise ratio. The signal pulse height distribution was also analysed and found to be independent of temperature within the range investigated.
id cern-2278277
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
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spelling cern-22782772019-09-30T06:29:59Zhttp://cds.cern.ch/record/2278277engClawson, Savannah EllenInvestigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrumNuclear Physics - ExperimentDetectors and Experimental TechniquesThe quantum efficiency of a Burle 8850 photomultiplier tube with a potassium-caesium-antimony (bialkali) photocathode was determined by attenuating a 1 mW HeNe laser emitting at 633 nm and measuring the signal frequency when the laser was incident on the photomultiplier. A temperature range of 5 $^{\circ}$C $-$ 20 $^{\circ}$C was investigated and it was found that the quantum efficiency decreases with temperature, with the signal frequency decreasing at a faster rate than the dark current frequency. Therefore, it was concluded that it would not be beneficial to cool photomultiplier tubes operating in the visible spectrum for use in collinear laser spectroscopy due to a decreasing signal-to-noise ratio. The signal pulse height distribution was also analysed and found to be independent of temperature within the range investigated.CERN-STUDENTS-Note-2017-029oai:cds.cern.ch:22782772017-08-10
spellingShingle Nuclear Physics - Experiment
Detectors and Experimental Techniques
Clawson, Savannah Ellen
Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title_full Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title_fullStr Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title_full_unstemmed Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title_short Investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
title_sort investigating the temperature dependence of photomultiplier quantum efficiency when operating in the visible spectrum
topic Nuclear Physics - Experiment
Detectors and Experimental Techniques
url http://cds.cern.ch/record/2278277
work_keys_str_mv AT clawsonsavannahellen investigatingthetemperaturedependenceofphotomultiplierquantumefficiencywhenoperatinginthevisiblespectrum