A novel technique for measuring the HPGe detector pulse shape as a function of the γ -ray interaction position inside the detector volume is presented. This technique is based on a specific pulse shape comparison procedure. Its main feature is that it allows to characterize the 3D position response of a HPGe segmented detector in a much shorter time as compared with the standard coincidence techniques. The method was first validated using a GenBank simulation of a 36-fold HPGe AGATA detector realized taking into account the effects of the electronic chain response and electrical noise on the calculated signal shape. This procedure was then applied to extract experimentally the position response of a non-segmented coaxial HPGe detector along the radial direction, using a 438MBq 137Cs collimated γ -source. The results of this measurement show a dependence of the pulse shape as a function of γ -ray interaction radial coordinate consistent with that obtained with calculations. The signal acquisition rate reached using this characterization technique allows to realize a full scan of a large volume highly segmented HPGe detector in less than a week.

A novel technique for the characterization of a HPGe detector response based on pulse shape comparison / F.C.L. Crespi, F. Camera, B. Million, M. Sassi, O. Wieland, A. Bracco. - In: NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH. SECTION A, ACCELERATORS, SPECTROMETERS, DETECTORS AND ASSOCIATED EQUIPMENT. - ISSN 0168-9002. - 593:3(2008 Aug 11), pp. 440-447.

A novel technique for the characterization of a HPGe detector response based on pulse shape comparison

F.C.L. Crespi
Primo
;
F. Camera
Secondo
;
M. Sassi;A. Bracco
Ultimo
2008

Abstract

A novel technique for measuring the HPGe detector pulse shape as a function of the γ -ray interaction position inside the detector volume is presented. This technique is based on a specific pulse shape comparison procedure. Its main feature is that it allows to characterize the 3D position response of a HPGe segmented detector in a much shorter time as compared with the standard coincidence techniques. The method was first validated using a GenBank simulation of a 36-fold HPGe AGATA detector realized taking into account the effects of the electronic chain response and electrical noise on the calculated signal shape. This procedure was then applied to extract experimentally the position response of a non-segmented coaxial HPGe detector along the radial direction, using a 438MBq 137Cs collimated γ -source. The results of this measurement show a dependence of the pulse shape as a function of γ -ray interaction radial coordinate consistent with that obtained with calculations. The signal acquisition rate reached using this characterization technique allows to realize a full scan of a large volume highly segmented HPGe detector in less than a week.
gamma-rays ; HPGe detectors ; pulse shape analysis ; PSA ; AGATA ; detector scan
Settore FIS/01 - Fisica Sperimentale
Settore FIS/04 - Fisica Nucleare e Subnucleare
11-ago-2008
Article (author)
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/56927
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