TY - JOUR
T1 - X-ray grating interferometry design for the 4D GRAPH-X system
AU - Patera, Alessandra
AU - Arboleda, Carolina
AU - Ferrero, Veronica
AU - Fiorina, Elisa
AU - Jefimovs, Konstantins
AU - Giudice, Alessandro Lo
AU - Milian, Felix Mas
AU - Mereu, Paolo
AU - Pallotta, Stefania
AU - Ramello, Luciano
AU - Re, Alessandro
AU - Visca, Lorenzo
AU - Cerello, Piergiorgio
N1 - Publisher Copyright:
© 2021 IOP Publishing Ltd.
PY - 2022/1/27
Y1 - 2022/1/27
N2 - The 4D GRAPH-X (Dynamic GRAting-based PHase contrast x-ray imaging) project aims at developing a prototype of an x-ray grating-based phase-contrast imaging scanner in a laboratory setting, which is based on the Moirè single-shot acquisition method in order to be optimized for analysing moving objects (in the specific case, a dynamic thorax phantom), that could evolve into a suitable tool for biomedical applications although it can be extended to other application fields. When designing an x-ray Talbot-Lau interferometer, high visibility and sensitivity are two important figures of merit, strictly related to the performance of the system in obtaining high quality phase contrast and dark-field images. Wave field simulations are performed to optimize the setup specifications and construct a high-resolution and high-sensitivity imaging system. In this work, the design of a dynamic imaging setup using a conventional milli-focus x-ray source is presented. Optimization by wave front simulations leads to a symmetric configuration with 5.25 μm pitch at third Talbot order and 45 keV design energy. The simulated visibility is about 22%. Results from GATE based Monte Carlo simulations show a 19% transmission percentage of the incoming beam into the detector after passing through all the gratings and the sample. Such results are promising in view of building a system optimized for dynamic imaging.
AB - The 4D GRAPH-X (Dynamic GRAting-based PHase contrast x-ray imaging) project aims at developing a prototype of an x-ray grating-based phase-contrast imaging scanner in a laboratory setting, which is based on the Moirè single-shot acquisition method in order to be optimized for analysing moving objects (in the specific case, a dynamic thorax phantom), that could evolve into a suitable tool for biomedical applications although it can be extended to other application fields. When designing an x-ray Talbot-Lau interferometer, high visibility and sensitivity are two important figures of merit, strictly related to the performance of the system in obtaining high quality phase contrast and dark-field images. Wave field simulations are performed to optimize the setup specifications and construct a high-resolution and high-sensitivity imaging system. In this work, the design of a dynamic imaging setup using a conventional milli-focus x-ray source is presented. Optimization by wave front simulations leads to a symmetric configuration with 5.25 μm pitch at third Talbot order and 45 keV design energy. The simulated visibility is about 22%. Results from GATE based Monte Carlo simulations show a 19% transmission percentage of the incoming beam into the detector after passing through all the gratings and the sample. Such results are promising in view of building a system optimized for dynamic imaging.
KW - dynamic imaging
KW - talbot-lau grating interferometer
KW - wavefront simulation
KW - x-ray phase contrast imaging
UR - https://www.scopus.com/pages/publications/85118727081
U2 - 10.1088/1361-6463/ac2fd6
DO - 10.1088/1361-6463/ac2fd6
M3 - Article
SN - 0022-3727
VL - 55
JO - Journal of Physics D: Applied Physics
JF - Journal of Physics D: Applied Physics
IS - 4
M1 - 045103
ER -