王向

Distinguished Professor(Talent)

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Atomic-scale observation of nucleation-and growth-controlled deformation twinning in body-centered cubic nanocrystals

Release time:2026-07-20
Hits:
Impact Factor:
18.9
DOI number:
10.1038/s41467-024-44837-8
Journal:
Nature Communications
Abstract:
Twinning is an essential mode of plastic deformation for achieving superior strength and ductility in metallic nanostructures. It has been generally believed that twinning-induced plasticity in body-centered cubic (BCC) metals is controlled by twin nucleation, but facilitated by rapid twin growth once the nucleation energy barrier is overcome. By performing in situ atomic-scale transmission electron microscopy straining experiments and atomistic simulations, we find that deformation twinning in BCC Ta nanocrystals larger than 15 nm in diameter proceeds by reluctant twin growth, resulting from slow advancement of twinning partials along the boundaries of finite-sized twin structures. In contrast, reluctant twin growth can be obviated by reducing the nanocrystal diameter to below 15 nm. As a result, the nucleated twin structure penetrates quickly through the cross section of nanocrystals, enabling fast twin growth via facile migration of twin boundaries leading to large uniform plastic deformation. The present work reveals a size-dependent transition in the nucleation- and growth-controlled twinning mechanism in BCC metals, and provides insights for exploiting twinning-induced plasticity and breaking strength-ductility limits in nanostructured BCC metals.
Co-author:
Yin Zhang, Xiang Wang
First Author:
Li Zhong
Indexed by:
Journal paper
Correspondence Author:
Ting Zhu, Scott X. Mao
Discipline:
Engineering
Document Type:
J
Volume:
15
Issue:
1
Page Number:
560
Translation or Not:
no
Date of Publication:
2024-01-16
Included Journals:
SCI
Links to published journals:
https://www.nature.com/articles/s41467-024-44837-8