Strain-induced fully coherent triphase nanoarchitecture in refractory high-entropy alloys.
basic_science · Level V
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- Record sourced from PubMed, PMID 42313972.
- Also identified by DOI 10.1126/science.aec4995.
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Abstract
Nanostructured materials have exceptional properties, yet scalable fabrication of bulk, three-dimensional, nanograined structures remains a formidable challenge. We report the self-assembly of a fully coherent, triphase nanostructure-resembling a mesocrystal-formed through solid-state phase separation in an equiatomic refractory alloy. The resulting architecture integrates three common metallic crystal structures-face-centered cubic, body-centered cubic, and hexagonal close-packed-interwoven through strain-induced phase separation and unconventional transformation pathways triggered by the separation itself. This nanostructure accommodates large atomic-size mismatches and lattice misfits while maintaining full coherency and thermal stability. The resulting material exhibits a compressive yield strength exceeding 2 gigapascals. These findings provide a method for nanostructure engineering in compositionally complex alloys through strain-induced transformation pathway engineering.