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A contrast-optimized hollow cone dark field imaging method for nanocrystalline in glass-ceramic materials
Jiong Ding1, Shigeo Mori1, Yasuhiro Domi2
1Department of Materials Science, Osaka Metropolitan University, Sakai, Osaka 599-8531, Japan.
Abstract:
Hollow-cone dark-field (HCDF) imaging provides valuable structural information about polycrystalline and nanocrystalline materials. However, conventional HCDF imaging suffers from low contrast, particularly in samples containing amorphous phases in glass-ceramics. In this study, we propose an improved HCDF imaging method that replaces the continuous beam-tilting approach with a series of discrete dark-field (DF) images acquired by stepwise rotation of the electron beam. Each DF image corresponds to a specific position along the targeted diffraction ring. To enhance contrast, we introduce a selective averaging strategy that includes only the crystalline regions, segmented through a customized thresholding and morphological filtering process. This approach significantly improves the visualization of crystalline domains compared to conventional HCDF images. The method was validated using polycrystalline Au, LaSi2/TaSi2/Si composite nanomaterials, and in-situ annealed Li3PS4 sulfide electrolytes. The results demonstrate enhanced contrast and clarity, particularly under conditions of low crystallinity, making the method especially effective for structural studies of glass-ceramics and other materials with low crystallinity.

