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Strengthening Mechanism of a Single Precipitate in a Metallic Nanocube

Authors :
Nicolas Bertin
Wei Cai
Yifan Wang
Mehrdad T. Kiani
X. Wendy Gu
Source :
Nano Letters. 19:255-260
Publication Year :
2018
Publisher :
American Chemical Society (ACS), 2018.

Abstract

Nanoprecipitates play a significant role in the strength, ductility, and damage tolerance of metallic alloys through their interaction with crystalline defects, especially dislocations. However, the difficulty of observing the action of individual precipitates during plastic deformation has made it challenging to conclusively determine the mechanisms of the precipitate-defect interaction for a given alloy system and presents a major bottleneck in the rational design of nanostructured alloys. Here, we demonstrate the in situ compression of core-shell nanocubes as a promising platform to determine the precise role of individual precipitates. Each nanocube with a dimension of ∼85 nm contains a single spherical precipitate of ∼25 nm diameter. The Au-core/Ag-shell nanocubes show a yield strength of 495 MPa with no strain hardening. The deformation mechanism is determined to be surface nucleation of dislocations which easily traverses through the coherent Au-Ag interface. On the other hand, the Au-core/Cu-shell nanocubes show a yield strength of 829 MPa with a pronounced strain hardening rate. Molecular dynamics and dislocation dynamics simulations, in conjunction with TEM analysis, have demonstrated the yield mechanism to be the motion of threading dislocations extending from the semicoherent Au-Cu interface to the surface, and strain hardening to be caused by a single-armed Orowan looping mechanism. Nanocube compression offers an exciting opportunity to directly compare computational models of defect dynamics with in situ deformation measurements to elucidate the precise mechanisms of precipitate hardening.

Details

ISSN :
15306992 and 15306984
Volume :
19
Database :
OpenAIRE
Journal :
Nano Letters
Accession number :
edsair.doi.dedup.....e80e678274b9b0dad5c30b246010417d
Full Text :
https://doi.org/10.1021/acs.nanolett.8b03857