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DOE OSTI · 2586757

Unveiling and Mapping Polymorphs in Fluorite Y2TiO5 Using 4D-STEM and Unsupervised Machine Learning

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Abstract

Y2TiO5 belongs to the Ln2TiO5 (Ln = lanthanide or Y) family of ceramic materials and exhibits a range of desirable material properties such as radiation tolerance, frustrated magnetism, and large dielectric constant. However, understanding the complex crystal structure of Y2TiO5 remains elusive, given that Y2TiO5 can adopt multiple polymorphs such as cubic, orthorhombic, and hexagonal phases within the lattice. In this work, we report a detailed structural analysis of Y2TiO5 using four-dimensional scanning transmission electron microscopy coupled with unsupervised machine learning. The pyrochlore nanodomains, characterized by the ordered arrangement of yttrium cations on the A site of their A2BO5 structure, are present within the matrix of a predominantly fluorite-structured Y2TiO5 along with a third polymorph, the hexagonal phase. The pyrochlore phase is found to form 2 nm boundary regions around hexagonal phase stacking faults, highlighting the potential influence of the hexagonal phase on the occurrence and distribution of the pyrochlore phase. Lastly, we identify a unique pyrochlore phase with asymmetric arrangement of cation ordering along a single planar direction. Our findings provide invaluable insights into the possible mechanisms stabilizing pyrochlore nanodomains within the fluorite lattice of Y2TiO5.

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BibTeXRIS

Hershkovitz, Eitan [University of Florida], Yoo, Timothy [University of Florida], Pu, Xiaofei [National Renewable Energy Lab., Golden, CO (United States)], Bawane, Kaustubh [Idaho National Laboratory], Nakayama, Tadachika [Nagaoka University of Technology], Suematsu, Hisayuki [Nagaoka University of Technology], He, Lingfeng [Idaho National Laboratory; Nagaoka University of Technology; North Carolina State University], Kim, Honggyu [University of Florida]. 2024-12-17. Unveiling and Mapping Polymorphs in Fluorite Y2TiO5 Using 4D-STEM and Unsupervised Machine Learning. https://doi.org/10.1111/jace.20309

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36 MATERIALS SCIENCE↗