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Pt-X(X = Ir、Au)薄膜的亚稳相形成

Metastable phase formation of Pt-X (X = Ir, Au) thin films.

作者信息

Saksena Aparna, Chien Yu-Chuan, Chang Keke, Kümmerl Pauline, Hans Marcus, Völker Bernhard, Schneider Jochen M

机构信息

Materials Chemistry, RWTH Aachen University, 52074, Aachen, Germany.

Engineering Laboratory of Nuclear Energy Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, 315201, Ningbo, Zhejiang, China.

出版信息

Sci Rep. 2018 Jul 5;8(1):10198. doi: 10.1038/s41598-018-28452-4.

Abstract

The dependence of phase formation and mechanical properties on the chemical composition has been investigated for Pt-Ir and Pt-Au combinatorial thin films. The formation of a single, metastable Pt-Ir solid solution has been observed for all experimental compositions and temperatures. Upon Ir addition to Pt the experimentally determined changes in lattice parameter and Young's modulus display rule of mixture behavior which is in good agreement with our ab initio data. Whereas, in the Pt-Au system, the single metastable solid solution decomposes into two phases as the growth temperature is raised to ≥600 °C. The lattice parameters in the dual phase region are independent of chemical composition. The substrate temperature and chemical composition dependent phase formation in Pt-Ir and Pt-Au thin films can be rationalized based on CALPHAD (CALculation of PHAse Diagrams) results combined with estimations of the activation energy required for surface diffusion: The metastable phase formation during film growth is caused by kinetic limitations, where Ir atoms (in Pt-Ir) need to overcome an up to factor 6 higher activation energy barrier than Au (in Pt-Au) to enable surface diffusion.

摘要

已针对铂 - 铱和铂 - 金组合薄膜研究了相形成和力学性能对化学成分的依赖性。对于所有实验成分和温度,均观察到单一亚稳铂 - 铱固溶体的形成。向铂中添加铱后,实验测定的晶格参数和杨氏模量的变化呈现出混合规律行为,这与我们的第一性原理数据高度吻合。然而,在铂 - 金体系中,当生长温度升至≥600°C时,单一亚稳固溶体会分解为两个相。双相区域中的晶格参数与化学成分无关。基于相图计算(CALPHAD)结果并结合表面扩散所需激活能的估计,可以合理解释铂 - 铱和铂 - 金薄膜中依赖于衬底温度和化学成分的相形成:薄膜生长过程中亚稳相的形成是由动力学限制引起的,其中铱原子(在铂 - 铱中)需要克服比金原子(在铂 - 金中)高达6倍的激活能势垒才能实现表面扩散。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3de/6033916/f83062775f27/41598_2018_28452_Fig1_HTML.jpg

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