Appleget Chelsea D, Riano Juan Sebastian, Hodge Andrea M
Department of Aerospace and Mechanical Engineering, University of Southern California, Los Angeles, CA 90089, USA.
Mork Family Department of Chemical Engineering and Materials Science, University of Southern California, Los Angeles, CA 90089, USA.
Materials (Basel). 2022 Jan 5;15(1):382. doi: 10.3390/ma15010382.
The microstructural transformations of binary nanometallic multilayers (NMMs) to equiaxed nanostructured materials were explored by characterizing a variety of nanoscale multilayer films. Four material systems of multilayer films, Hf-Ti, Ta-Hf, W-Cr, and Mo-Au, were synthesized by magnetron sputtering, heat treated at 1000 °C, and subsequently characterized by transmission electron microscopy. Binary systems were selected based on thermodynamic models predicting stable nanograin formation with similar global compositions around 20-30 at.%. All NMMs maintained nanocrystalline grain sizes after evolution into an equiaxed structure, where the systems with highly mobile incoherent interfaces or higher energy interfaces showed a more significant increase in grain size. Furthermore, varying segregation behaviors were observed, including grain boundary (GB) segregation, precipitation, and intermetallic formation depending on the material system selected. The pathway to tailored microstructures was found to be governed by key mechanisms and factors as determined by a film's initial characteristics, including global and local composition, interface energy, layer structure, and material selection. This work presents a global evaluation of NMM systems and demonstrates their utility as foundation materials to promote tailored nanomaterials.
通过对多种纳米级多层膜进行表征,探索了二元纳米金属多层膜(NMMs)向等轴纳米结构材料的微观结构转变。通过磁控溅射合成了Hf-Ti、Ta-Hf、W-Cr和Mo-Au四种多层膜材料体系,在1000℃下进行热处理,随后用透射电子显微镜进行表征。基于热力学模型选择二元体系,该模型预测在约20-30原子百分比的相似总体组成下会形成稳定的纳米晶粒。所有NMMs在演变成等轴结构后均保持纳米晶体晶粒尺寸,其中具有高度可移动非相干界面或更高能量界面的体系晶粒尺寸增加更为显著。此外,观察到了不同的偏析行为,包括晶界(GB)偏析、析出和金属间化合物的形成,这取决于所选的材料体系。发现定制微观结构的途径受关键机制和因素的支配,这些机制和因素由薄膜的初始特性决定,包括总体和局部组成、界面能、层结构和材料选择。这项工作对NMM体系进行了全面评估,并证明了它们作为促进定制纳米材料的基础材料的实用性。