材料科学
纳米晶材料
微观结构
粒度
晶粒生长
延展性(地球科学)
退火(玻璃)
材料的强化机理
断裂韧性
晶界强化
晶界
制作
韧性
冶金
复合材料
纳米技术
蠕动
病理
替代医学
医学
作者
Alejandro Barrios,James E. Nathaniel,Joseph M. Monti,Zachary Milne,David P. Adams,Khalid Mikhiel Hattar,Douglas L. Medlin,Remi Philippe Michel Dingreville,Brad Boyce
出处
期刊:Acta Materialia
[Elsevier]
日期:2023-04-01
卷期号:247: 118733-118733
被引量:4
标识
DOI:10.1016/j.actamat.2023.118733
摘要
Nanocrystalline metals are inherently unstable against thermal and mechanical stimuli, commonly resulting in significant grain growth. Also, while these metals exhibit substantial Hall-Petch strengthening, they tend to suffer from low ductility and fracture toughness. With regard to the grain growth problem, alloying elements have been employed to stabilize the microstructure through kinetic and/or thermodynamic mechanisms. And to address the ductility challenge, spatially-graded grain size distributions have been developed to facilitate heterogeneous deformation modes: high-strength at the surface and plastic deformation in the bulk. In the present work, we combine these two strategies and present a new methodology for the fabrication of gradient nanostructured metals via compositional means. We have demonstrated that annealing a compositionally stepwise Pt-Au film with a homogenous microstructure results in a film with a spatial microstructural gradient, exhibiting grains which can be twice as wide in the bulk compared to the outer surfaces. Additionally, phase-field modeling was employed for the comparison with experimental results and for further investigation of the competing mechanisms of Au diffusion and thermally induced grain growth. This fabrication method offers an alternative approach for developing the next generation of microstructurally stable gradient nanostructured films.
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