XRM2024 - Wed05A - "Dose-efficient propagation-based X-ray phase contrast imaging at high and low resolution by Bragg crystal optics"
Autor
Beteiligtes Institut
Institut für Photonenforschung und Synchrotronstrahlung (IPS)
Laboratorium für Applikationen der Synchrotronstrahlung (LAS)
Genre
Beschreibung
X-ray phase contrast imaging techniques can generate high image contrast for weakly attenuating samples such as soft materials or biological tissues by exploiting the phase shift that the sample imprints on the incident wavefield. Propagation-based phase contrast imaging (PB-PCI) exploits the self-interference of the diffracted wavefield behind the sample, evolving gradually into intensity contrast with increasing propagation distance between sample and detector. In principle, PB-PCI can be employed for imaging at both high, micrometer resolution as well as moderate resolutions of several tens of micrometers. However, both resolution regimes face severe constraints. On the one hand, conventional scintillator-based detectors with micrometer resolution suffer from decreasing efficiency with increasing resolution. On the other hand, imaging large samples at moderate resolution requires tens to hundreds of meters propagation distance to generate sufficient image contrast. Recently, a new beamline has been built at the ESRF to facilitate PB-PCI at remarkably long propagation distances of up to 36 m, tailored to the X-ray source size [1].
By employing crystal optics, we overcome both above-mentioned limitations. In view of high resolution, a Bragg magnifier allows directly magnifying the X-ray wavefield and using a highly-efficient single-photon-counting detector (SPCD) while maintaining micrometer resolution. The developed system operates close to the theoretical limit of dose efficiency for PB-PCI [2]. We prove the superior imaging performance compared to conventional detector systems and show a substantial increase in dose efficiency for high spatial frequencies that comprise the relevant high-resolution components of the image. Further, we demonstrate the technique’s potential by a pilot in vivo study of submillimeter-sized parasitoid wasps.
For imaging large, centimeter-sized samples at moderate resolution (several tens of micrometers), we present a new technique that allows achieving strong image contrast within a meter-scale setup, thereby eliminating the need for very long propagation distances [3]. Simultaneously, the technique reduces image blur caused by the finite X-ray source size. The strong increase in image contrast is demonstrated in a proof-of-concept experiment realized by a Bragg demagnifier. This approach paves the way for low-dose studies of large radiation-sensitive samples, with potential applications ranging from biomedical soft tissue and small animal in vivo imaging up to medical diagnostics, e.g., the early detection of breast cancer.
[1] T. Lang et al., "Multiscale Phase-Contrast Tomography at BM18", e-Journal of Nondestructive Testing 28 (2023)[2] R. Spiecker et al., "Dose-efficient in vivo X-ray phase contrast imaging at micrometer resolution by Bragg magnifiers", Optica 10.1364/OPTICA.500978 (2023)[3] R. Spiecker et al., "X-ray phase contrast imaging with kilometer propagation distance within a meter", Physical Review Research, 10.1103/pkmv-x47f (2025)
Laufzeit (hh:mm:ss)
00:16:38
Publiziert am
24.04.2026
Fachgebiet
Lizenz
Creative Commons Namensnennung 4.0 International
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32
| Auflösung | 1920 x 1080 Pixel |
| Seitenverhältnis | 16:9 |
| Audiobitrate | 64961 bps |
| Audio Kanäle | 1 |
| Audio Codec | aac |
| Audio Abtastrate | 48000 Hz |
| Gesamtbitrate | 751144 bps |
| Container | mov,mp4,m4a,3gp,3g2,mj2 |
| Dauer | 997.972000 s |
| Dateiname | DIVA-2026-59_mp4.mp4 |
| Dateigröße | 93.702.617 byte |
| Bildwiederholfrequenz | 25 |
| Videobitrate | 680111 bps |
| Video Codec | h264 |
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