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Diffracting aperture based differential phase contrast for scanning X-ray microscopy
Author(s) -
Burkhard Kaulich,
François Polack,
Ulrich Neuhaeusler,
J. Susini,
Enzo Di Fabrizio,
Thomas Wilhein
Publication year - 2002
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.10.001111
Subject(s) - optics , microscope , differential interference contrast microscopy , pinhole (optics) , materials science , microscopy , optical microscope , synchrotron radiation , diffraction , aperture (computer memory) , phase (matter) , zone plate , interference microscopy , physics , scanning electron microscope , quantum mechanics , acoustics
It is demonstrated that in a zone plate based scanning X-ray microscope, used to image low absorbing, heterogeneous matter at a mesoscopic scale, differential phase contrast (DPC) can be implemented without adding any additional optical component to the normal scheme of the microscope. The DPC mode is simply generated by an appropriate positioning and alignment of microscope apertures. Diffraction from the apertures produces a wave front with a non-uniform intensity. The signal recorded by a pinhole photo diode located in the intensity gradient is highly sensitive to phase changes introduced by the specimen to be recorded. The feasibility of this novel DPC technique was proven with the scanning X-ray microscope at the ID21 beamline of the European Synchrotron Radiation facility (ESRF) operated at 6 keV photon energy. We observe a differential phase contrast, similar to Nomarski's differential interference contrast for the light microscope, which results in a tremendous increase in image contrast of up to 20 % when imaging low absorbing specimen.

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