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X-ray interferometry without analyzer for breast CT application: a simulation study

Purpose: We investigate an analyzer-less x-ray interferometer with a spatially modulated phase grating (MPG) that can deliver three modalities (attenuation image, phase image, and scatter images) in breast computed tomography (BCT). The system can provide three x-ray modalities while preserving the...

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Autores principales: Xu, Jingzhu, Ham, Kyungmin, Dey, Joyoni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7096764/
https://www.ncbi.nlm.nih.gov/pubmed/32258221
http://dx.doi.org/10.1117/1.JMI.7.2.023503
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author Xu, Jingzhu
Ham, Kyungmin
Dey, Joyoni
author_facet Xu, Jingzhu
Ham, Kyungmin
Dey, Joyoni
author_sort Xu, Jingzhu
collection PubMed
description Purpose: We investigate an analyzer-less x-ray interferometer with a spatially modulated phase grating (MPG) that can deliver three modalities (attenuation image, phase image, and scatter images) in breast computed tomography (BCT). The system can provide three x-ray modalities while preserving the dose to the object and can achieve attenuation image sensitivity similar to that of a standard absorption-only BCT. The MPG system works with a source, a source-grating, a single phase grating, and a detector. No analyzer is necessary. Thus, there is an approximately 2x improvement in fluence at the detector for our system compared with the same source–detector distance Talbot–Lau x-ray interferometry (TLXI) because the TLXI has an analyzer after the object, which is not required for the MPG. Approach: We investigate the MPG BCT system in simulations and find a clinically feasible system geometry. First, the mechanism of MPG interferometry is conceptually shown via Sommerfeld–Rayleigh diffraction integral simulations. Next, we investigate source coherence requirements, fringe visibility, and phase sensitivity dependence on different system parameters and find clinically feasible system geometry. Results: The phase sensitivity of MPG interferometry is proportional to object–detector distance and inversely proportional to a period of broad fringes at the detector, which is determined by the grating spatial modulation period. In our simulations, the MPG interferometry can achieve about 27% fringe visibility with clinically realistic BCT geometry of a total source–detector distance of 950 mm and source–object distance of 500 mm. Conclusions: We simulated a promising analyzer-less x-ray interferometer, with a spatially sinusoidal MPG. Our system is expected to deliver the attenuation, phase and scatter image in a single acquisition without dose or fluence detriment, compared with conventional BCT.
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spelling pubmed-70967642021-03-26 X-ray interferometry without analyzer for breast CT application: a simulation study Xu, Jingzhu Ham, Kyungmin Dey, Joyoni J Med Imaging (Bellingham) Physics of Medical Imaging Purpose: We investigate an analyzer-less x-ray interferometer with a spatially modulated phase grating (MPG) that can deliver three modalities (attenuation image, phase image, and scatter images) in breast computed tomography (BCT). The system can provide three x-ray modalities while preserving the dose to the object and can achieve attenuation image sensitivity similar to that of a standard absorption-only BCT. The MPG system works with a source, a source-grating, a single phase grating, and a detector. No analyzer is necessary. Thus, there is an approximately 2x improvement in fluence at the detector for our system compared with the same source–detector distance Talbot–Lau x-ray interferometry (TLXI) because the TLXI has an analyzer after the object, which is not required for the MPG. Approach: We investigate the MPG BCT system in simulations and find a clinically feasible system geometry. First, the mechanism of MPG interferometry is conceptually shown via Sommerfeld–Rayleigh diffraction integral simulations. Next, we investigate source coherence requirements, fringe visibility, and phase sensitivity dependence on different system parameters and find clinically feasible system geometry. Results: The phase sensitivity of MPG interferometry is proportional to object–detector distance and inversely proportional to a period of broad fringes at the detector, which is determined by the grating spatial modulation period. In our simulations, the MPG interferometry can achieve about 27% fringe visibility with clinically realistic BCT geometry of a total source–detector distance of 950 mm and source–object distance of 500 mm. Conclusions: We simulated a promising analyzer-less x-ray interferometer, with a spatially sinusoidal MPG. Our system is expected to deliver the attenuation, phase and scatter image in a single acquisition without dose or fluence detriment, compared with conventional BCT. Society of Photo-Optical Instrumentation Engineers 2020-03-26 2020-03 /pmc/articles/PMC7096764/ /pubmed/32258221 http://dx.doi.org/10.1117/1.JMI.7.2.023503 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/ Published by SPIE under a Creative Commons Attribution 4.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle Physics of Medical Imaging
Xu, Jingzhu
Ham, Kyungmin
Dey, Joyoni
X-ray interferometry without analyzer for breast CT application: a simulation study
title X-ray interferometry without analyzer for breast CT application: a simulation study
title_full X-ray interferometry without analyzer for breast CT application: a simulation study
title_fullStr X-ray interferometry without analyzer for breast CT application: a simulation study
title_full_unstemmed X-ray interferometry without analyzer for breast CT application: a simulation study
title_short X-ray interferometry without analyzer for breast CT application: a simulation study
title_sort x-ray interferometry without analyzer for breast ct application: a simulation study
topic Physics of Medical Imaging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7096764/
https://www.ncbi.nlm.nih.gov/pubmed/32258221
http://dx.doi.org/10.1117/1.JMI.7.2.023503
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