Quantifying resolution in pink-beam dark-field X-ray microscopy: experiments and simulations

Pink-beam dark-field X-ray microscopy (pDFXM) is a powerful emerging technique for time-resolved studies of microstructure and strain evolution in bulk crystalline materials. In this work, we systematically assess the performance of pDFXM relative to monochromatic DFXM when using a compound refractive lens as the objective. Analytical expressions for the spatial and angular resolution are derived and compared with numerical simulations based on geometrical optics and experimental data. The pink-beam configuration provides an increased diffraction intensity depending on the deformation state of the sample, accompanied by a general tenfold degradation in angular resolution along the rocking and axial strain (longitudinal) directions. This trade-off is disadvantageous for axial strain mapping but can be advantageous in cases where integrated intensities are needed. For a perfect crystal under parallel illumination with a pink beam, our results show that chromatic aberration is absent, whereas under condensed illumination it becomes significant. The aberration is shown to depend strongly on the local distortion of the crystal. Weak-beam imaging conditions, such as those required for resolving dislocations, are shown to remain feasible under pink-beam operation and may even provide an improved signal-to-noise ratio. The higher incident flux, enhanced by nearly two orders of magnitude, results in a ∼30× increase in diffracted intensity; beam heating effects are quantified and implications for optimized scanning protocols are discussed.

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Publication Details

Journal
KITopen
Published
2026-10-05
DOI
https://doi.org/10.5445/ir/1000197631
Primary Topic
Advanced X-ray Imaging Techniques
Type
article
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article

Quantifying resolution in pink-beam dark-field X-ray microscopy: experiments and simulations

H. F. Poulsen, C. Yildirim, M. La Bella, C. Detlefs et al.
KITopen
Advanced X-ray Imaging Techniques
article

Quantifying resolution in pink-beam dark-field X-ray microscopy: experiments and simulations

H. F. Poulsen, C. Yildirim, M. La Bella, C. Detlefs, S. Staeck, N. A. Henningsson, M. P. Kabukcuoglu
article en

Abstract

Pink-beam dark-field X-ray microscopy (pDFXM) is a powerful emerging technique for time-resolved studies of microstructure and strain evolution in bulk crystalline materials. In this work, we systematically assess the performance of pDFXM relative to monochromatic DFXM when using a compound refractive lens as the objective. Analytical expressions for the spatial and angular resolution are derived and compared with numerical simulations based on geometrical optics and experimental data. The pink-beam configuration provides an increased diffraction intensity depending on the deformation state of the sample, accompanied by a general tenfold degradation in angular resolution along the rocking and axial strain (longitudinal) directions. This trade-off is disadvantageous for axial strain mapping but can be advantageous in cases where integrated intensities are needed. For a perfect crystal under parallel illumination with a pink beam, our results show that chromatic aberration is absent, whereas under condensed illumination it becomes significant. The aberration is shown to depend strongly on the local distortion of the crystal. Weak-beam imaging conditions, such as those required for resolving dislocations, are shown to remain feasible under pink-beam operation and may even provide an improved signal-to-noise ratio. The higher incident flux, enhanced by nearly two orders of magnitude, results in a ∼30× increase in diffracted intensity; beam heating effects are quantified and implications for optimized scanning protocols are discussed.

KITopen
Openalex Percentile: Top 13%
Advanced X-ray Imaging Techniques
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