Epitaxial NiTi Thin Films: A 3D Puzzle

K. Lünser, S. Schwabe, K. Nielsch, S. Fähler
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Abstract

NiTi films are widely used in micro applications due to their shape memory and superelasticity properties. When customizing the material for a specific miniature device, it is vital to understand the underlying martensitic microstructure, how it forms, and how it affects the shape memory effect. Up to now, most research on the martensitic microstructure in NiTi concentrates on NiTi bulk, but results derived from bulk materials are not always applicable for films as well. Even though polycrystalline NiTi films are widely available, these films contain grain boundaries, which hamper or even inhibit a scale bridging analysis of the martensitic microstructure. Therefore, the martensitic microstructure in NiTi films and its formation remains mostly unexplored. To improve NiTi for applications in miniature devices, it is thus helpful to study films without grain boundaries as model systems. In this study, the authors analyze single crystalline NiTi films grown by DC magnetron sputter deposition. These epitaxial films grow without large angle grain boundaries and make it possible to analyze the martensitic microstructure over several length scales. The work analyzed the martensitic microstructure and its nucleation with microscopy and X-ray methods and compared these measurements with orientation relationships calculated with the phenomenological theory of martensite. The results are the starting point to understand the formation of a hierarchical martensitic microstructure of NiTi in three dimensions.
外延镍钛薄膜:一个3D难题
镍钛薄膜由于具有形状记忆和超弹性等特性,在微应用中得到了广泛的应用。当为特定的微型器件定制材料时,了解潜在的马氏体微观结构,它是如何形成的,以及它如何影响形状记忆效应是至关重要的。目前,对NiTi中马氏体微观结构的研究大多集中在NiTi体上,而体材料的研究结果并不一定适用于薄膜。尽管多晶NiTi薄膜广泛使用,但这些薄膜含有晶界,这阻碍甚至抑制了马氏体微观结构的尺度桥接分析。因此,对NiTi薄膜中的马氏体微观结构及其形成的研究仍处于空白阶段。因此,研究无晶界薄膜作为模型系统,有助于提高NiTi在微型器件中的应用。在本研究中,作者分析了直流磁控溅射沉积法生长的单晶NiTi薄膜。这些外延膜生长时没有大角度的晶界,使得在多个长度尺度上分析马氏体微观结构成为可能。用显微和x射线方法分析了马氏体微观结构及其成核,并将这些测量结果与马氏体现象学理论计算的取向关系进行了比较。这些结果是在三维空间上理解NiTi分层马氏体微观结构形成的起点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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