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Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors

Despite the clinical acceptance of ToF-PET, there is still a gap between the technology's performance and the end-user's needs. Core to bridging this gap is the ability to develop radiation detectors combining a short attenuation length and a sub-nanosecond time response. Currently, the de...

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Autores principales: Krause, Philip, Rogers, Edith, Birowosuto, Muhammad Danang, Pei, Qibing, Auffray, Etiennette, Vasil'ev, Andrey N., Bizarri, Gregory
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9253360/
https://www.ncbi.nlm.nih.gov/pubmed/35800729
http://dx.doi.org/10.1016/j.heliyon.2022.e09754
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author Krause, Philip
Rogers, Edith
Birowosuto, Muhammad Danang
Pei, Qibing
Auffray, Etiennette
Vasil'ev, Andrey N.
Bizarri, Gregory
author_facet Krause, Philip
Rogers, Edith
Birowosuto, Muhammad Danang
Pei, Qibing
Auffray, Etiennette
Vasil'ev, Andrey N.
Bizarri, Gregory
author_sort Krause, Philip
collection PubMed
description Despite the clinical acceptance of ToF-PET, there is still a gap between the technology's performance and the end-user's needs. Core to bridging this gap is the ability to develop radiation detectors combining a short attenuation length and a sub-nanosecond time response. Currently, the detector of choice, Lu(2)SiO(5):Ce(3+) single crystal, is not selected for its ability to answer the performance needs, but as a trade-off between requirements and availability. To bypass the current performance limitations, in particular restricted time response, the concept of the heterostructured detector has been proposed. The concept aims at splitting the scintillation mechanisms across two materials, one acting primarily as an absorber and one as an ultra-fast emitter. If the concept has attracted the interest of the medical and material communities, little has been shown in terms of the benefits/limitations of the approach. Based on Monte Carlo simulations, we present a survey of heterostructure performance versus detector design. The data allow for a clear understanding of the design/performance relationship. This, in turn, enables the establishment of design rules toward the development and optimization of heterostructured detectors that could supersede the current detector technology in the medical imaging field but also across multiple sectors (e.g. high-energy physics, security).
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spelling pubmed-92533602022-07-06 Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors Krause, Philip Rogers, Edith Birowosuto, Muhammad Danang Pei, Qibing Auffray, Etiennette Vasil'ev, Andrey N. Bizarri, Gregory Heliyon Research Article Despite the clinical acceptance of ToF-PET, there is still a gap between the technology's performance and the end-user's needs. Core to bridging this gap is the ability to develop radiation detectors combining a short attenuation length and a sub-nanosecond time response. Currently, the detector of choice, Lu(2)SiO(5):Ce(3+) single crystal, is not selected for its ability to answer the performance needs, but as a trade-off between requirements and availability. To bypass the current performance limitations, in particular restricted time response, the concept of the heterostructured detector has been proposed. The concept aims at splitting the scintillation mechanisms across two materials, one acting primarily as an absorber and one as an ultra-fast emitter. If the concept has attracted the interest of the medical and material communities, little has been shown in terms of the benefits/limitations of the approach. Based on Monte Carlo simulations, we present a survey of heterostructure performance versus detector design. The data allow for a clear understanding of the design/performance relationship. This, in turn, enables the establishment of design rules toward the development and optimization of heterostructured detectors that could supersede the current detector technology in the medical imaging field but also across multiple sectors (e.g. high-energy physics, security). Elsevier 2022-06-18 /pmc/articles/PMC9253360/ /pubmed/35800729 http://dx.doi.org/10.1016/j.heliyon.2022.e09754 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Krause, Philip
Rogers, Edith
Birowosuto, Muhammad Danang
Pei, Qibing
Auffray, Etiennette
Vasil'ev, Andrey N.
Bizarri, Gregory
Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title_full Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title_fullStr Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title_full_unstemmed Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title_short Design rules for time of flight Positron Emission Tomography (ToF-PET) heterostructure radiation detectors
title_sort design rules for time of flight positron emission tomography (tof-pet) heterostructure radiation detectors
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9253360/
https://www.ncbi.nlm.nih.gov/pubmed/35800729
http://dx.doi.org/10.1016/j.heliyon.2022.e09754
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