Gan Lucia T, Yang Rui, Traylor Rachel, Cai Wei, Nix William D, Fan Jonathan A
Department of Electrical Engineering, Stanford University, Stanford, CA, 94305, USA.
University of Michigan-Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, Shanghai, 200240, China.
Adv Mater. 2019 Aug;31(32):e1902189. doi: 10.1002/adma.201902189. Epub 2019 Jun 13.
The study of grain boundaries is the foundation to understanding many of the intrinsic physical properties of bulk metals. Here, the preparation of microscale thin-film gold bicrystals, using rapid melt growth, is presented as a model system for studies of single grain boundaries. This material platform utilizes standard fabrication tools and supports the high-yield growth of thousands of bicrystals per wafer, each containing a grain boundary with a unique <111> tilt character. The crystal growth dynamics of the gold grains in each bicrystal are mediated by platinum gradients, which originate from the gold-platinum seeds responsible for gold crystal nucleation. This crystallization mechanism leads to a decoupling between crystal nucleation and crystal growth, and it ensures that the grain boundaries form at the middle of the gold microstructures and possess a uniform distribution of misorientation angles. It is envisioned that these bicrystals will enable the systematic study of the electrical, optical, chemical, thermal, and mechanical properties of individual grain boundary types.
晶界研究是理解块状金属许多固有物理性质的基础。在此,介绍了使用快速熔体生长制备微米级薄膜金双晶体,作为研究单晶界的模型系统。这个材料平台利用标准制造工具,支持每个晶圆高产数千个双晶体的生长,每个双晶体都包含一个具有独特<111>倾斜特征的晶界。每个双晶体中金晶粒的晶体生长动力学由铂梯度介导,铂梯度源自负责金晶体成核的金铂籽晶。这种结晶机制导致晶体成核与晶体生长解耦,并确保晶界在金微结构中间形成,且具有均匀分布的取向差角。可以设想,这些双晶体将有助于系统研究各种晶界类型的电学、光学、化学、热学和力学性质。