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Room-temperature super-elongation in high-entropy alloy nanopillars

Engineering and Technology

Room-temperature super-elongation in high-entropy alloy nanopillars

Q. Zhang, R. Niu, et al.

This groundbreaking research by Qian Zhang and colleagues uncovers an astonishing room-temperature elongation of up to 110% in CoCrFeNi high-entropy alloy nanopillars, achieved at a remarkable flow stress of 0.6–1.0 GPa. The study reveals that deformation twinning and dislocation slip work in harmony to enhance mechanical reliability and provide insights into superplasticity in nanoscale materials.... show more
Abstract
Nanoscale small-volume metallic materials typically exhibit high strengths but often suffer from a lack of tensile ductility due to undesirable premature failure. Here, we report unusual room-temperature uniform elongation up to ~110% at a high flow stress of 0.6–1.0 GPa in single-crystalline <110>-oriented CoCrFeNi high-entropy alloy nanopillars with well-defined geometries. By combining high-resolution microscopy and large-scale atomistic simulations, we reveal that this ultrahigh uniform tensile ductility is attributed to spatial and synergistic coordination of deformation twinning and dislocation slip, which effectively promote deformation delocalization and delay necking failure. These joint and/or sequential activations of the underlying displacive deformation mechanisms originate from chemical compositional heterogeneities at the atomic level and resulting wide variations in generalized stacking fault energy and associated dislocation activities. Our work provides mechanistic insights into superplastic deformations of multiple-principal element alloys at the nanoscale and opens routes for designing nanodevices with high mechanical reliability.
Publisher
Nature Communications
Published On
Nov 17, 2023
Authors
Qian Zhang, Ranming Niu, Ying Liu, Jiaxi Jiang, Fan Xu, Xuan Zhang, Julie M. Cairney, Xianghai An, Xiaozhou Liao, Huajian Gao, Xiaoyan Li
Tags
high-entropy alloy
nanopillars
deformation twinning
dislocation slip
mechanical reliability
superplastic deformation
nanotechnology
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