Applied Optics · 2011 · 193 citations · 22 references
Optical MaterialsEngineeringMicroscopyOptic DesignOptical TestingInterferometryBeamsplitter GratingX-ray FluorescenceX-ray ImagingOptical PropertiesAssociated Particle-size SelectivityInstrumentationRadiologyHealth SciencesPhotonicsPhysicsGratingsParticle-size SelectivitySynchrotron RadiationX-ray DiffractionApplied PhysicsOptoelectronicsX-ray OpticDiffractive Optic
In grating-based x-ray phase sensitive imaging, dark-field contrast refers to the extinction of the interference fringes due to small-angle scattering. For configurations where the sample is placed before the beamsplitter grating, the dark-field contrast has been quantified with theoretical wave propagation models. Yet when the grating is placed before the sample, the dark-field contrast has only been modeled in the geometric optics regime. Here we attempt to quantify the dark-field effect in the grating-before-sample geometry with first-principle wave calculations and understand the associated particle-size selectivity. We obtain an expression for the dark-field effect in terms of the sample material's complex refractive index, which can be verified experimentally without fitting parameters. A dark-field computed tomography experiment shows that the particle-size selectivity can be used to differentiate materials of identical x-ray absorption.
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X-ray phase imaging with a grating interferometer
Timm Weitkamp, Ana Díaz, Christian Dávid et al. · Optics Express · 2005 · 1.2K citations · Full text
Hard-X-ray dark-field imaging using a grating interferometer
Franz Pfeiffer, Martin Bech, Oliver Bunk et al. · Nature Materials · 2008 · 1.1K citations
Demonstration of X-Ray Talbot Interferometry
Atsushi Momose, Shinya Kawamoto, Ichiro Koyama et al. · Japanese Journal of Applied Physics · 2003 · 954 citations