Characterization of secondary‐radiation background in X‐ray flat‐panel detectors during scanning proton beam irradiation

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Main Authors: Toshiyuki Terunuma, Kenta Takada, Seishin Takao, Mayu Osugi, Naoki Miyamoto, Suzuka Asano, Shunsuke Moriya, Takeji Sakae, Hideyuki Sakurai
Format: Artículo Open Access
Published: Wiley 2025
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author Toshiyuki Terunuma
Kenta Takada
Seishin Takao
Mayu Osugi
Naoki Miyamoto
Suzuka Asano
Shunsuke Moriya
Takeji Sakae
Hideyuki Sakurai
author_facet Toshiyuki Terunuma
Kenta Takada
Seishin Takao
Mayu Osugi
Naoki Miyamoto
Suzuka Asano
Shunsuke Moriya
Takeji Sakae
Hideyuki Sakurai
Toshiyuki Terunuma
Kenta Takada
Seishin Takao
Mayu Osugi
Naoki Miyamoto
Suzuka Asano
Shunsuke Moriya
Takeji Sakae
Hideyuki Sakurai
collection Wiley Open Access
contents Characterization of secondary‐radiation background in X‐ray flat‐panel detectors during scanning proton beam irradiation Toshiyuki Terunuma Kenta Takada Seishin Takao Mayu Osugi Naoki Miyamoto Suzuka Asano Shunsuke Moriya Takeji Sakae Hideyuki Sakurai Medical Physics Abstract Background Secondary‐radiation background (BG) generated in kilovoltage X‐ray flat‐panel detectors (FPDs) under scanning proton beam irradiation has not been thoroughly analyzed. Purpose This study aimed to determine and mathematically model the characteristics of secondary‐radiation BG in FPDs under scanning proton beam irradiation. Methods Using a synchrotron‐based proton system and two FPDs mounted on a gantry tilted at 135° to the proton beam axis, we acquired images of two phantoms (block and thorax). The FPD images were captured during three conditions: only X‐ray exposure, proton irradiation, and pauses between proton irradiations. Because the FPD readout rate (30 fps) was twice the X‐ray exposure rate (15 pps), the images were further categorized into two types: those corresponding to with and without X‐ray exposure. These FPD images were analyzed to determine the characteristics of the secondary‐radiation BG. In addition, a Monte Carlo simulation was conducted to complement the performed measurements. Results Analysis of the FPD images without X‐ray exposure revealed that the pure secondary‐radiation BG appeared as sparse spike patterns without a noticeable spatial bias across the FPD area in most images. The BG affected only 1.25% of the FPD pixels and could be modeled as an exponentially decreasing function with increasing pixel intensity. When considering typical X‐ray image brightness for the block and thorax phantoms, the impact of the BG on mean‐pixel‐intensity variation was < 1%. Monte Carlo simulations suggested that prompt photons were the primary source reaching the FPD. Conclusions This study demonstrates that the secondary‐radiation BG characteristics observed in the X‐ray FPD images during scanning proton beam irradiation can be quantitatively modeled. The impact of the secondary‐radiation BG on mean‐pixel‐intensity of FPD images was minimal. 10.1002/mp.70121 http://creativecommons.org/licenses/by/4.0/
doi_str_mv 10.1002/mp.70121
format Artículo Open Access
id wiley_oa_10_1002_mp_70121
institution Wiley Open Access
license_str_mv http://creativecommons.org/licenses/by/4.0/
publishDate 2025
publisher Wiley
record_format wiley_oa
spellingShingle Characterization of secondary‐radiation background in X‐ray flat‐panel detectors during scanning proton beam irradiation
Toshiyuki Terunuma
Kenta Takada
Seishin Takao
Mayu Osugi
Naoki Miyamoto
Suzuka Asano
Shunsuke Moriya
Takeji Sakae
Hideyuki Sakurai
Medical Physics
Characterization of secondary‐radiation background in X‐ray flat‐panel detectors during scanning proton beam irradiation Toshiyuki Terunuma Kenta Takada Seishin Takao Mayu Osugi Naoki Miyamoto Suzuka Asano Shunsuke Moriya Takeji Sakae Hideyuki Sakurai Medical Physics Abstract Background Secondary‐radiation background (BG) generated in kilovoltage X‐ray flat‐panel detectors (FPDs) under scanning proton beam irradiation has not been thoroughly analyzed. Purpose This study aimed to determine and mathematically model the characteristics of secondary‐radiation BG in FPDs under scanning proton beam irradiation. Methods Using a synchrotron‐based proton system and two FPDs mounted on a gantry tilted at 135° to the proton beam axis, we acquired images of two phantoms (block and thorax). The FPD images were captured during three conditions: only X‐ray exposure, proton irradiation, and pauses between proton irradiations. Because the FPD readout rate (30 fps) was twice the X‐ray exposure rate (15 pps), the images were further categorized into two types: those corresponding to with and without X‐ray exposure. These FPD images were analyzed to determine the characteristics of the secondary‐radiation BG. In addition, a Monte Carlo simulation was conducted to complement the performed measurements. Results Analysis of the FPD images without X‐ray exposure revealed that the pure secondary‐radiation BG appeared as sparse spike patterns without a noticeable spatial bias across the FPD area in most images. The BG affected only 1.25% of the FPD pixels and could be modeled as an exponentially decreasing function with increasing pixel intensity. When considering typical X‐ray image brightness for the block and thorax phantoms, the impact of the BG on mean‐pixel‐intensity variation was < 1%. Monte Carlo simulations suggested that prompt photons were the primary source reaching the FPD. Conclusions This study demonstrates that the secondary‐radiation BG characteristics observed in the X‐ray FPD images during scanning proton beam irradiation can be quantitatively modeled. The impact of the secondary‐radiation BG on mean‐pixel‐intensity of FPD images was minimal. 10.1002/mp.70121 http://creativecommons.org/licenses/by/4.0/
title Characterization of secondary‐radiation background in X‐ray flat‐panel detectors during scanning proton beam irradiation
topic Medical Physics
url https://aapm.onlinelibrary.wiley.com/doi/10.1002/mp.70121