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Faster and lower-dose X-ray reflectivity measurements enabled by physics-informed modeling and artificial

David Mareček1, Julian Oberreiter1, Andrew Nelson2

  • 1Physikalische und Theoretische Chemie, Universität Graz, Heinrichstraße 28, Graz, 8010, Austria.

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Summary

This study introduces a new method for analyzing real-time X-ray reflectivity (XRR) data using convolutional neural networks (CNNs) and physics-informed models. This approach enables faster, more accurate analysis of thin film growth, even with noisy or sparse data.

Keywords:
X-ray reflectivityco-refinementin situ measurementneural networksneutron reflectivity

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Area of Science:

  • Materials Science
  • Physics
  • Data Science

Background:

  • Real-time X-ray reflectivity (XRR) is crucial for monitoring thin film growth.
  • Traditional XRR analysis focuses on reciprocal-space vector magnitude (q), limiting dynamic insights.
  • Challenges include data sparsity and noise, often requiring extensive measurement times.

Purpose of the Study:

  • To develop a novel approach for analyzing time-dependent XRR data R(q, t).
  • To enhance the fidelity and efficiency of XRR data analysis for thin film growth experiments.
  • To enable faster measurements with reduced data requirements and improved noise handling.

Main Methods:

  • Analysis of XRR data as a function of both reciprocal-space vector (q) and time (t).
  • Integration of a physics-informed growth model to constrain real-space structure solutions.
  • Application of state-of-the-art convolutional neural networks (CNNs) and differential evolution fitting for co-refining multiple XRR curves.

Main Results:

  • Achieved analysis fidelity comparable to standard fits of individual XRR curves.
  • Demonstrated successful analysis with a sevenfold reduction in data points for sparsely sampled data.
  • Showcased robust performance with a 200-fold reduction in counting times for noisy data.

Conclusions:

  • The CNN-based approach with kinetic modeling significantly improves XRR data analysis efficiency and accuracy.
  • This method is adaptable to various kinetic X-ray and neutron reflectivity studies.
  • Facilitates faster experimental measurements with reduced beam damage, advancing materials characterization.