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Grain rotation mechanisms in nanocrystalline materials: Multiscale observations in Pt thin films

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Near-rigid-body grain rotation is commonly observed during grain growth, recrystallization, and plastic deformation in nanocrystalline materials. Despite decades of research, the dominant mechanisms underlying grain rotation remain enigmatic. We present direct evidence that grain rotation occurs through the motion of disconnections (line defects with step and dislocation character) along grain boundaries in platinum thin films. State-of-the-art in situ four-dimensional scanning transmission electron microscopy (4D-STEM) observations reveal the statistical correlation between grain rotation and grain growth or shrinkage. This correlation arises from shear-coupled grain boundary migration, which occurs through the motion of disconnections, as demonstrated by in situ high-angle annular dark-field STEM observations and the atomistic simulation-aided analysis. These findings provide quantitative insights into the structural dynamics of nanocrystalline materials.
Original languageEnglish
Pages (from-to)49-54
JournalScience
Volume386
Issue number6717
Online published3 Oct 2024
DOIs
Publication statusPublished - 4 Oct 2024

Funding

This work was supported by the National Science Foundation through the Materials Research Science and Engineering Center program under Grant DMR-2011967 (X.P. and H.H.) and the Army Research Office (ARO) under Grant W911NF-19-1-0263 (X.P., J.H., and D.S.). This study was also supported by the General Research Fund (GRF) grant from the Hong Kong Research Grants Council 17210723 (D.S.) and the Early Career Scheme (ECS) grant from the Hong Kong Research Grants Council CityU21213921 (J.H.). H.H. acknowledges the financial support by the Helmholtz Research Program Materials Systems Engineering and is grateful to the Karlsruhe Nano Micro Facility (KNMFi) for support and access to the facilities. The authors acknowledge the use of facilities and instrumentation at the UC Irvine Materials Research Institute (IMRI) supported in part by the National Science Foundation through the Materials Research Science and Engineering Center program (DMR-2011967).

RGC Funding Information

  • RGC-funded

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