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Journal article

The fractional Fourier transform as a simulation tool for lens-based X-ray microscopy

From

Department of Physics, Technical University of Denmark1

Neutrons and X-rays for Materials Physics, Department of Physics, Technical University of Denmark2

European Synchrotron Radiation Facility3

The fractional Fourier transform (FrFT) is introduced as a tool for numerical simulations of X-ray wavefront propagation. By removing the strict sampling requirements encountered in typical Fourier optics, simulations using the FrFT can be carried out with much decreased detail, allowing, for example, on-line simulation during experiments.

Moreover, the additive index property of the FrFT allows the propagation through multiple optical components to be simulated in a single step, which is particularly useful for compound refractive lenses (CRLs). It is shown that it is possible to model the attenuation from the entire CRL using one or two effective apertures without loss of accuracy, greatly accelerating simulations involving CRLs.

To demonstrate the applicability and accuracy of the FrFT, the imaging resolution of a CRL-based imaging system is estimated, and the FrFT approach is shown to be significantly more precise than comparable approaches using geometrical optics. Secondly, it is shown that extensive FrFT simulations of complex systems involving coherence and/or nonmonochromatic sources can be carried out in minutes.

Specifically, the chromatic aberrations as a function of source bandwidth are estimated, and it is found that the geometric optics greatly overestimates the aberration for energy bandwidths of around 1%.

Language: English
Year: 2018
Pages: 717-728
ISSN: 16005775 and 09090495
Types: Journal article
DOI: 10.1107/S1600577518003028
ORCIDs: Pedersen, Anders Filsøe , 0000-0002-3093-9241 , 0000-0003-2573-2286 and Poulsen, Henning Friis

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