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Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam

PURPOSE: The purpose of this work is the three‐dimensional characterization of the active volumes of commercial solid‐state dosimetry detectors. Detailed knowledge of the dimensions of the detector’s active volume as well as the detector housing is of particular interest for small‐field photon dosim...

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Autores principales: Poppinga, Daniela, Kranzer, Rafael, Ulrichs, Ann‐Britt, Delfs, Björn, Giesen, Ulrich, Langner, Frank, Poppe, Björn, Looe, Hui Khee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851623/
https://www.ncbi.nlm.nih.gov/pubmed/31292964
http://dx.doi.org/10.1002/mp.13705
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author Poppinga, Daniela
Kranzer, Rafael
Ulrichs, Ann‐Britt
Delfs, Björn
Giesen, Ulrich
Langner, Frank
Poppe, Björn
Looe, Hui Khee
author_facet Poppinga, Daniela
Kranzer, Rafael
Ulrichs, Ann‐Britt
Delfs, Björn
Giesen, Ulrich
Langner, Frank
Poppe, Björn
Looe, Hui Khee
author_sort Poppinga, Daniela
collection PubMed
description PURPOSE: The purpose of this work is the three‐dimensional characterization of the active volumes of commercial solid‐state dosimetry detectors. Detailed knowledge of the dimensions of the detector’s active volume as well as the detector housing is of particular interest for small‐field photon dosimetry. As shown in previous publications from different groups, the design of the detector housing influences the detector signal for small photon fields. Therefore, detailed knowledge of the active volume dimension and the surrounding materials form the basis for accurate Monte Carlo simulations of the detector. METHODS: A 10 MeV proton beam focused by the microbeam system of the Physikalisch‐Technische Bundesanstalt was used to measure two‐dimensional response maps of a synthetic diamond detector (microDiamond, type 60019, PTW Freiburg) and two silicon detectors (microSilicon, type 60023, PTW Freiburg and Diode E, type 60017, PTW Freiburg). In addition, the thickness of the active volume of the new microSilicon was measured using the method developed in a previous study. RESULTS: The analysis of the response maps leads to active area of 1.18 mm(2) for the Diode E, 1.75 mm(2) for the microSilicon, and 3.91 mm(2) for the microDiamond detector. The thickness of the active volume of the microSilicon detector was determined to be (17.8 ± 2) µm. CONCLUSIONS: This study provides detailed geometrical data of the dosimetric active volume of three different solid‐state detector types.
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spelling pubmed-68516232019-11-18 Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam Poppinga, Daniela Kranzer, Rafael Ulrichs, Ann‐Britt Delfs, Björn Giesen, Ulrich Langner, Frank Poppe, Björn Looe, Hui Khee Med Phys COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY PURPOSE: The purpose of this work is the three‐dimensional characterization of the active volumes of commercial solid‐state dosimetry detectors. Detailed knowledge of the dimensions of the detector’s active volume as well as the detector housing is of particular interest for small‐field photon dosimetry. As shown in previous publications from different groups, the design of the detector housing influences the detector signal for small photon fields. Therefore, detailed knowledge of the active volume dimension and the surrounding materials form the basis for accurate Monte Carlo simulations of the detector. METHODS: A 10 MeV proton beam focused by the microbeam system of the Physikalisch‐Technische Bundesanstalt was used to measure two‐dimensional response maps of a synthetic diamond detector (microDiamond, type 60019, PTW Freiburg) and two silicon detectors (microSilicon, type 60023, PTW Freiburg and Diode E, type 60017, PTW Freiburg). In addition, the thickness of the active volume of the new microSilicon was measured using the method developed in a previous study. RESULTS: The analysis of the response maps leads to active area of 1.18 mm(2) for the Diode E, 1.75 mm(2) for the microSilicon, and 3.91 mm(2) for the microDiamond detector. The thickness of the active volume of the microSilicon detector was determined to be (17.8 ± 2) µm. CONCLUSIONS: This study provides detailed geometrical data of the dosimetric active volume of three different solid‐state detector types. John Wiley and Sons Inc. 2019-07-22 2019-09 /pmc/articles/PMC6851623/ /pubmed/31292964 http://dx.doi.org/10.1002/mp.13705 Text en © 2019 The Authors. Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
Poppinga, Daniela
Kranzer, Rafael
Ulrichs, Ann‐Britt
Delfs, Björn
Giesen, Ulrich
Langner, Frank
Poppe, Björn
Looe, Hui Khee
Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title_full Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title_fullStr Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title_full_unstemmed Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title_short Three‐dimensional characterization of the active volumes of PTW microDiamond, microSilicon, and Diode E dosimetry detectors using a proton microbeam
title_sort three‐dimensional characterization of the active volumes of ptw microdiamond, microsilicon, and diode e dosimetry detectors using a proton microbeam
topic COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851623/
https://www.ncbi.nlm.nih.gov/pubmed/31292964
http://dx.doi.org/10.1002/mp.13705
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