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Single-material phase retrieval in grating-based X-ray imaging using a physics-based model

  • Florian Schaff
  • , Johannes Brantl
  • , Kaye S. Morgan
  • , Wolfgang Noichl
  • , Johannes Melcher
  • , Benedikt Günther
  • , Martin Dierolf
  • , Franz Pfeiffer

Research output: Contribution to journalArticleResearchpeer-review

Abstract

X-ray phase-contrast imaging utilizes wave-optical effects to generate image contrast, complementing traditional X-ray attenuation. This has proven particularly interesting for investigating biological samples with tissues that would otherwise produce weak attenuation contrast. Amongst the available techniques, grating-based imaging and propagation-based imaging stand out as two of the most promising methods to advance medical imaging and microscopy, respectively. In propagation-based imaging, approximating the object as a single material enables single-shot imaging with substantially reduced noise levels and enhanced image quality. Building on the success of the single-material approximation in propagation-based imaging, this study explores its potential application in grating-based imaging. We derive a physics-based model that directly integrates the single-material approximation into signal processing. Applying this approach to experimental data demonstrates its ability to reduce noise in the resulting composite image. Comparing our results with those from a single-material-based post-processing method reveals comparable outcomes, further validating the applicability of the single-material approximation in grating-based imaging.

Original languageEnglish
Pages (from-to)31713-31721
Number of pages9
JournalOptics Express
Volume33
Issue number15
DOIs
Publication statusPublished - 28 Jul 2025

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