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Preferred orientation and its effects on intensity-correlation measurements. | LitMetric

AI Article Synopsis

  • Intensity-correlation measurements provide insights into the nanostructures of materials, expanding upon traditional pair-correlation methods by using a pair-angle distribution function (PADF) to analyze three- and four-body spatial relationships.
  • The theory of preferred orientation in intensity-correlation techniques is linked to established texture analysis, showing that preferred orientation can introduce errors and complicate data interpretation.
  • Experimental results indicate that the impact of preferred orientation increases with the number of crystalline domains in the beam, often overshadowing the nanostructural signals, especially when even slight orientation deviations occur.

Article Abstract

Intensity-correlation measurements allow access to nanostructural information on a range of ordered and disordered materials beyond traditional pair-correlation methods. In real space, this information can be expressed in terms of a pair-angle distribution function (PADF) which encodes three- and four-body distances and angles. To date, correlation-based techniques have not been applied to the analysis of microstructural effects, such as preferred orientation, which are typically investigated by texture analysis. Preferred orientation is regarded as a potential source of error in intensity-correlation experiments and complicates interpretation of the results. Here, the theory of preferred orientation in intensity-correlation techniques is developed, connecting it to the established theory of texture analysis. The preferred-orientation effect is found to scale with the number of crystalline domains in the beam, surpassing the nanostructural signal when the number of domains becomes large. Experimental demonstrations are presented of the orientation-dominant and nanostructure-dominant cases using PADF analysis. The results show that even minor deviations from uniform orientation produce the strongest angular correlation signals when the number of crystalline domains in the beam is large.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8895024PMC
http://dx.doi.org/10.1107/S2052252521012422DOI Listing

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