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组合磁控溅射制备 Ti-Ta 薄膜材料库的晶体结构分析。

Crystallographic Structure Analysis of a Ti-Ta Thin Film Materials Library Fabricated by Combinatorial Magnetron Sputtering.

机构信息

Applied Crystallography and Materials Science, Department of Earth and Environmental Sciences, Faculty of Geosciences , Ludwig-Maximilians-Universität , 80333 München , Germany.

Werkstoffe der Mikrotechnik, Institut für Werkstoffe , Ruhr-Universität Bochum , 44801 Bochum , Germany.

出版信息

ACS Comb Sci. 2018 Mar 12;20(3):137-150. doi: 10.1021/acscombsci.7b00135. Epub 2018 Feb 15.

Abstract

Ti-Ta thin films exhibit properties that are of interest for applications as microactuators and as biomedical implants. A Ti-Ta thin film materials library was deposited at T = 25 °C by magnetron sputtering employing the combinatorial approach, which led to a compositional range of TiTa to TiTa. Subsequent high-throughput characterization methods permitted a quick and comprehensive study of the crystallographic, microstructural, and morphological properties, which strongly depend on the chemical composition. SEM investigation revealed a columnar morphology having pyramidal, sharp tips with coarser columns in the Ti-rich and finer columns in the Ta-rich region. By grazing incidence X-ray diffraction four phases were identified, from Ta-lean to Ta-rich: ω phase, α″ martensite, β phase, and a tetragonal Ta-rich phase (Ta). The crystal structure and microstructure were analyzed by Rietveld refinement and clear trends could be determined as a function of Ta-content. The lattice correspondences between β as the parent phase and α″ and ω as derivative phases were expressed in matrix form. The β ⇌ α″ phase transition shows a discontinuity at the composition where the martensitic transformation temperatures fall below room temperature (between 34 and 38 at. % Ta) rendering it first order and confirming its martensitic nature. A short study of the α″ martensite employing the Landau theory is included for a mathematical quantification of the spontaneous lattice strain at room temperature (ϵ̂ = 22.4(6) % for pure Ti). Martensitic properties of Ti-Ta are beneficial for the development of high-temperature actuators with actuation response at transformation temperatures higher than 100 °C.

摘要

Ti-Ta 薄膜具有作为微致动器和生物医学植入物应用的有趣特性。采用组合方法,在 T = 25°C 通过磁控溅射沉积 Ti-Ta 薄膜材料库,其组成范围为 TiTa 至 TiTa。随后的高通量表征方法允许快速全面地研究结晶、微观结构和形态特性,这些特性强烈依赖于化学成分。SEM 研究表明,具有金字塔形、尖锐尖端的柱状形态,在富 Ti 区有较粗的柱状物,在富 Ta 区有较细的柱状物。通过掠入射 X 射线衍射,确定了从 Ta 贫到 Ta 富的四个相:ω 相、α″马氏体、β 相和富 Ta 的四方相(Ta)。通过 Rietveld 精修分析晶体结构和微观结构,可以确定明确的趋势作为 Ta 含量的函数。β 作为母相和 α″和 ω 作为衍生相之间的晶格对应关系以矩阵形式表示。β ⇌ α″ 相变在马氏体转变温度低于室温(34 至 38 at.% Ta 之间)的成分下表现出不连续性,使其成为一级相变,并证实其马氏体性质。对α″马氏体进行了 Landau 理论的简短研究,以数学量化室温下的自发晶格应变(纯 Ti 时为 ϵ̂ = 22.4(6) %)。Ti-Ta 的马氏体特性有利于开发在高于 100°C 的转变温度下具有致动响应的高温致动器。

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