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Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators

The concept of structure engineering has been proposed for exploring the next generation of radiation detectors with improved performance. A TOF-PET geometry with heterostructured scintillators with a pixel size of $3.0 \times 3.1 \times15$ mm$^3$ was simulated using Monte Carlo. The heterostructure...

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Autores principales: Mohr, Philipp, Efthimiou, Nikos, Pagano, Fiammetta, Kratochwil, Nicolaus, Pizzichemi, Marco, Tsoumpas, Charalampos, Auffray, Etiennette, Ziemons, Karl
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:https://dx.doi.org/10.1109/trpms.2022.3208615
http://cds.cern.ch/record/2847615
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author Mohr, Philipp
Efthimiou, Nikos
Pagano, Fiammetta
Kratochwil, Nicolaus
Pizzichemi, Marco
Tsoumpas, Charalampos
Auffray, Etiennette
Ziemons, Karl
author_facet Mohr, Philipp
Efthimiou, Nikos
Pagano, Fiammetta
Kratochwil, Nicolaus
Pizzichemi, Marco
Tsoumpas, Charalampos
Auffray, Etiennette
Ziemons, Karl
author_sort Mohr, Philipp
collection CERN
description The concept of structure engineering has been proposed for exploring the next generation of radiation detectors with improved performance. A TOF-PET geometry with heterostructured scintillators with a pixel size of $3.0 \times 3.1 \times15$ mm$^3$ was simulated using Monte Carlo. The heterostructures consisted of alternating layers of BGO as a dense material with high stopping power and plastic (EJ232) as a fast light emitter. The detector time resolution was calculated as a function of the deposited and shared energy in both materials on an event-by-event basis. While sensitivity was reduced to 32% for 100- μm thick plastic layers and 52% for 50 μm , the coincidence time resolution (CTR) distribution improved to 204 ± 49 and 220±41 ps, respectively, compared to 276 ps that we considered for bulk BGO. The complex distribution of timing resolutions was accounted for in the reconstruction. We divided the events into three groups based on their CTR and modeled them with different Gaussian TOF kernels. On an NEMA IQ phantom, the heterostructures had better contrast recovery in early iterations. On the other hand, BGO achieved a better contrast-to-noise ratio (CNR) after the 15th iteration due to the higher sensitivity. The developed simulation and reconstruction methods constitute new tools for evaluating different detector designs with complex time responses.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
record_format invenio
spelling cern-28476152023-03-31T10:12:19Zdoi:10.1109/trpms.2022.3208615http://cds.cern.ch/record/2847615engMohr, PhilippEfthimiou, NikosPagano, FiammettaKratochwil, NicolausPizzichemi, MarcoTsoumpas, CharalamposAuffray, EtiennetteZiemons, KarlImage Reconstruction Analysis for Positron Emission Tomography With Heterostructured ScintillatorsHealth Physics and Radiation EffectsThe concept of structure engineering has been proposed for exploring the next generation of radiation detectors with improved performance. A TOF-PET geometry with heterostructured scintillators with a pixel size of $3.0 \times 3.1 \times15$ mm$^3$ was simulated using Monte Carlo. The heterostructures consisted of alternating layers of BGO as a dense material with high stopping power and plastic (EJ232) as a fast light emitter. The detector time resolution was calculated as a function of the deposited and shared energy in both materials on an event-by-event basis. While sensitivity was reduced to 32% for 100- μm thick plastic layers and 52% for 50 μm , the coincidence time resolution (CTR) distribution improved to 204 ± 49 and 220±41 ps, respectively, compared to 276 ps that we considered for bulk BGO. The complex distribution of timing resolutions was accounted for in the reconstruction. We divided the events into three groups based on their CTR and modeled them with different Gaussian TOF kernels. On an NEMA IQ phantom, the heterostructures had better contrast recovery in early iterations. On the other hand, BGO achieved a better contrast-to-noise ratio (CNR) after the 15th iteration due to the higher sensitivity. The developed simulation and reconstruction methods constitute new tools for evaluating different detector designs with complex time responses.oai:cds.cern.ch:28476152023
spellingShingle Health Physics and Radiation Effects
Mohr, Philipp
Efthimiou, Nikos
Pagano, Fiammetta
Kratochwil, Nicolaus
Pizzichemi, Marco
Tsoumpas, Charalampos
Auffray, Etiennette
Ziemons, Karl
Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title_full Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title_fullStr Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title_full_unstemmed Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title_short Image Reconstruction Analysis for Positron Emission Tomography With Heterostructured Scintillators
title_sort image reconstruction analysis for positron emission tomography with heterostructured scintillators
topic Health Physics and Radiation Effects
url https://dx.doi.org/10.1109/trpms.2022.3208615
http://cds.cern.ch/record/2847615
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