Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator

A Compton camera prototype for ion beam range monitoring via prompt (< 1 ns) gamma detection in hadron therapy is being developed and characterized at the Medical Physics Department of LMU Munich. The system consists of a large (50x50x30 mm3) monolithic LaBr3(Ce) scintillation crystal as absorber...

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Main Authors: Liprandi Silvia, Mayerhofer Michael, Aldawood Saad, Binder Tim, Dedes George, Miani Agnese, Schaart Dennis R., Lozano Ingrid I. Valencia, Parodi Katia, Thirolf Peter G.
Format: Article
Language:English
Published: De Gruyter 2017-09-01
Series:Current Directions in Biomedical Engineering
Subjects:
Online Access:https://doi.org/10.1515/cdbme-2017-0138
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spelling doaj-4b44371c8117445783e3e59298d897162021-09-06T19:19:25ZengDe GruyterCurrent Directions in Biomedical Engineering2364-55042017-09-013265565910.1515/cdbme-2017-0138cdbme-2017-0138Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillatorLiprandi Silvia0Mayerhofer Michael1Aldawood Saad2Binder Tim3Dedes George4Miani Agnese5Schaart Dennis R.6Lozano Ingrid I. Valencia7Parodi Katia8Thirolf Peter G.9Ludwig Maximilians Universität (LMU) München, Medical Physics Department, Am Coulombwall 1, Garching, GermanyLMU München, Medical Physics Department, GermanyLMU München, Department of Medical Physics, GermanyLMU München, Medical Physics Department, GermanyLMU München, Medical Physics Department, GermanyLMU München, Medical Physics Department, GermanyDelft University of Technology, NetherlandsLMU München, Medical Physics Department, GermanyLMU München, Medical Physics Department, GermanyLMU München, Medical Physics Department, GermanyA Compton camera prototype for ion beam range monitoring via prompt (< 1 ns) gamma detection in hadron therapy is being developed and characterized at the Medical Physics Department of LMU Munich. The system consists of a large (50x50x30 mm3) monolithic LaBr3(Ce) scintillation crystal as absorber component to detect the multi-MeV Compton scattered photons, together with a stack of 6 double-sided silicon strip detectors (DSSSD) acting as scatterer component. Key ingredient of the γ-source reconstruction is the determination of the γ-ray interaction position in the scintillator, which is read out by a 256-fold segmented multi-anode photomultiplier tube (PMT). From simulations an angular resolution of about 1.5o for the photon source reconstruction can be expected for the energy range around 3 – 5 MeV, provided that a spatial resolution of 3 mm can be reached in the absorbing scintillator [1]. Therefore, particular effort was dedicated to characterize this latter property as a function of the γ-ray energy. Intense, tightly collimated 137Cs and 60Co photon sources were used for 2D irradiation scans (step size 0.5 mm) as prerequisite for studying the performance of the “k-Nearest-Neighbors” algorithm developed at TU Delft [2] (together with its variant ”Categorical Average Pattern”, CAP) and extending its applicability into the energy range beyond the original 511 keV. In this paper we present our most recent interaction position analysis in the absorbing scintillator, leading to a considerably improved value for the spatial resolution: systematic studies were performed as a function of the k-NN parameters and the PMT segmentation. A trend of improving spatial resolution with increasing photon energy was confirmed, resulting in the realization of the presently optimum spatial resolution of 2.9(1) mm @1.3 MeV, thus reaching the design specifications of the Compton camera absorber. The specification goal was reached also for a reduced PMT segmentation of 8x8 anode segments (each with 6x6 mm2 active area), thus allowing to reduce the complexity of the signal processing while preserving the performance.https://doi.org/10.1515/cdbme-2017-0138hadron therapygamma-ray medical imagingcompton cameramonolithic scintillatorspatial resolution
collection DOAJ
language English
format Article
sources DOAJ
author Liprandi Silvia
Mayerhofer Michael
Aldawood Saad
Binder Tim
Dedes George
Miani Agnese
Schaart Dennis R.
Lozano Ingrid I. Valencia
Parodi Katia
Thirolf Peter G.
spellingShingle Liprandi Silvia
Mayerhofer Michael
Aldawood Saad
Binder Tim
Dedes George
Miani Agnese
Schaart Dennis R.
Lozano Ingrid I. Valencia
Parodi Katia
Thirolf Peter G.
Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
Current Directions in Biomedical Engineering
hadron therapy
gamma-ray medical imaging
compton camera
monolithic scintillator
spatial resolution
author_facet Liprandi Silvia
Mayerhofer Michael
Aldawood Saad
Binder Tim
Dedes George
Miani Agnese
Schaart Dennis R.
Lozano Ingrid I. Valencia
Parodi Katia
Thirolf Peter G.
author_sort Liprandi Silvia
title Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
title_short Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
title_full Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
title_fullStr Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
title_full_unstemmed Sub-3mm spatial resolution from a large monolithic LaBr3 (Ce) scintillator
title_sort sub-3mm spatial resolution from a large monolithic labr3 (ce) scintillator
publisher De Gruyter
series Current Directions in Biomedical Engineering
issn 2364-5504
publishDate 2017-09-01
description A Compton camera prototype for ion beam range monitoring via prompt (< 1 ns) gamma detection in hadron therapy is being developed and characterized at the Medical Physics Department of LMU Munich. The system consists of a large (50x50x30 mm3) monolithic LaBr3(Ce) scintillation crystal as absorber component to detect the multi-MeV Compton scattered photons, together with a stack of 6 double-sided silicon strip detectors (DSSSD) acting as scatterer component. Key ingredient of the γ-source reconstruction is the determination of the γ-ray interaction position in the scintillator, which is read out by a 256-fold segmented multi-anode photomultiplier tube (PMT). From simulations an angular resolution of about 1.5o for the photon source reconstruction can be expected for the energy range around 3 – 5 MeV, provided that a spatial resolution of 3 mm can be reached in the absorbing scintillator [1]. Therefore, particular effort was dedicated to characterize this latter property as a function of the γ-ray energy. Intense, tightly collimated 137Cs and 60Co photon sources were used for 2D irradiation scans (step size 0.5 mm) as prerequisite for studying the performance of the “k-Nearest-Neighbors” algorithm developed at TU Delft [2] (together with its variant ”Categorical Average Pattern”, CAP) and extending its applicability into the energy range beyond the original 511 keV. In this paper we present our most recent interaction position analysis in the absorbing scintillator, leading to a considerably improved value for the spatial resolution: systematic studies were performed as a function of the k-NN parameters and the PMT segmentation. A trend of improving spatial resolution with increasing photon energy was confirmed, resulting in the realization of the presently optimum spatial resolution of 2.9(1) mm @1.3 MeV, thus reaching the design specifications of the Compton camera absorber. The specification goal was reached also for a reduced PMT segmentation of 8x8 anode segments (each with 6x6 mm2 active area), thus allowing to reduce the complexity of the signal processing while preserving the performance.
topic hadron therapy
gamma-ray medical imaging
compton camera
monolithic scintillator
spatial resolution
url https://doi.org/10.1515/cdbme-2017-0138
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