A Takagi–Taupin-Informed Simulation System and Multi-Parameter Optimization Method for Doubly Curved Crystal Monochromators in X-Ray Fluorescence Spectrometry

Doubly curved crystal (DCC) monochromators for X-ray fluorescence (XRF) couple crystal material, mosaicity, source/sample distances, crystal dimensions, and the meridional and sagittal bending radii, but are usually tuned empirically or one parameter at a time. A Takagi–Taupin-informed simulation system turns this coupled design problem into a common limit of detection (LOD) optimization by chaining tube spectrum modeling, an approximate diffraction module, two-dimensional DCC focusing geometry, and an XRF forward model from the source spectrum to the LOD. Calibrated using laboratory reference measurements and evaluated through a synthetic perturbation-based internal self-consistency test over 13 configurations, the system supports comparative screening within the explored design space; absolute LOD prediction still requires independent experimental validation. The engineering-recommended LiF(220) benchmark achieves an Fe Kα LOD of 1.253 ppm under shared geometry, while a separate Ge(111) curvature scan reaches a conditional sampled minimum of 1.094 ppm at (Rm,Rs)=(75,20) mm; the two values arise from different conditions and are not directly rankable. Curvature parameters dominate the LOD sensitivity, followed by the source distance, crystal dimensions, and anode selection. The framework is element-agnostic and transferable to other crystals and target elements.

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Publication Details

Journal
Sensors
Published
2026-09-25
DOI
https://doi.org/10.3390/s26196071
Primary Topic
X-ray Spectroscopy and Fluorescence Analysis
Type
article
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article

A Takagi–Taupin-Informed Simulation System and Multi-Parameter Optimization Method for Doubly Curved Crystal Monochromators in X-Ray Fluorescence Spectrometry

Xiangjun Xin, Feng Tian, Fu Wang, Qi Zhang et al.
Sensors
X-ray Spectroscopy and Fluorescence Analysis
article

A Takagi–Taupin-Informed Simulation System and Multi-Parameter Optimization Method for Doubly Curved Crystal Monochromators in X-Ray Fluorescence Spectrometry

Xiangjun Xin, Feng Tian, Fu Wang, Qi Zhang, Lan Rao, Mohai Yue, Zipeng Wang, Yun Teng, Ran Gao
article en

Abstract

Doubly curved crystal (DCC) monochromators for X-ray fluorescence (XRF) couple crystal material, mosaicity, source/sample distances, crystal dimensions, and the meridional and sagittal bending radii, but are usually tuned empirically or one parameter at a time. A Takagi–Taupin-informed simulation system turns this coupled design problem into a common limit of detection (LOD) optimization by chaining tube spectrum modeling, an approximate diffraction module, two-dimensional DCC focusing geometry, and an XRF forward model from the source spectrum to the LOD. Calibrated using laboratory reference measurements and evaluated through a synthetic perturbation-based internal self-consistency test over 13 configurations, the system supports comparative screening within the explored design space; absolute LOD prediction still requires independent experimental validation. The engineering-recommended LiF(220) benchmark achieves an Fe Kα LOD of 1.253 ppm under shared geometry, while a separate Ge(111) curvature scan reaches a conditional sampled minimum of 1.094 ppm at (Rm,Rs)=(75,20) mm; the two values arise from different conditions and are not directly rankable. Curvature parameters dominate the LOD sensitivity, followed by the source distance, crystal dimensions, and anode selection. The framework is element-agnostic and transferable to other crystals and target elements.

SensorsVol. 26(19)
Beijing Institute of Technology (CN), Guangdong University of Technology (CN), Beijing University of Posts and Telecommunications (CN)
Openalex Percentile: Top 12%
X-ray Spectroscopy and Fluorescence Analysis
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