Structural Anisotropy-Driven Atomic Mechanisms of Phase Transformations in the Pt-Sn System.
basic_science · Level V
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- Record sourced from PubMed, PMID 37535801.
- Also identified by DOI 10.1021/acs.nanolett.3c02162.
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Abstract
Using <i>in situ</i> atomic-resolution scanning transmission electron microscopy, atomic movements and rearrangements associated with diffusive solid to solid phase transformations in the Pt-Sn system are captured to reveal details of the underlying atomistic mechanisms that drive these transformations. In the PtSn<sub>4</sub> to PtSn<sub>2</sub> phase transformation, a periodic superlattice substructure and a unique intermediate structure precede the nucleation and growth of the PtSn<sub>2</sub> phase. At the atomic level, all stages of the transformation are templated by the anisotropic crystal structure of the parent PtSn<sub>4</sub> phase. In the case of the PtSn<sub>2</sub> to Pt<sub>2</sub>Sn<sub>3</sub> transformation, the anisotropy in the structure of product Pt<sub>2</sub>Sn<sub>3</sub> dictates the path of transformation. Analysis of atomic configurations at the transformation front elucidates the diffusion pathways and lattice distortions required for these phase transformations. Comparison of multiple Pt-Sn phase transformations reveals the structural parameters governing solid to solid phase transformations in this technologically interesting intermetallic system.