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Published January 2011 | public
Journal Article

Size-induced weakening and grain boundary-assisted deformation in 60 nm grained Ni nanopillars

Abstract

Nanocrystalline metals generally exhibit high strengths and good fatigue resistance Their strengthening scales with the inverse of grain size through square root dependence down to grain sizes of ~20 nm, representing the well-known Hall-Petch relation Here we show that in surface-dominated structures with sub-micron dimensions, i e nanopillars, 60 nm grained Ni-W alloys exhibit lower tensile strengths with decreasing pillar diameter, form shear bands and undergo mechanical twinning Moreover, there appears to be a transition in the deformation mechanism from dislocation-driven deformation in pillars with diameters larger than 100 nm to grain-boundary mediated deformation in pillars of 100 nm and below, including grain rotation and grain-boundary migration, processes previously observed only in grain sizes below 20 nm in materials of the same composition We postulate that the presence of free surfaces activates these grain-boundary mediated deformation processes at much larger grain sizes than observed before and results in lower attained strengths.

Additional Information

© 2010 Acta Materialia Inc. Published by Elsevier Ltd. Received 11 August 2010; accepted 8 September 2010. Available online 17 September 2010. The authors gratefully acknowledge the financial support of the National Science Foundation through MRSEC (DMR-0520565) at Caltech and of the Office of Naval Research (grant no. N000140910883), as well as Kavli Nanoscience Institute at Caltech; we thank Prof. C.A. Schuh for providing the bulk samples.

Additional details

Created:
August 22, 2023
Modified:
October 23, 2023