[001]取向caf2as2单晶的单轴压缩:微观结构和温度对超弹性的影响,第一部分:实验观察

J. Sypek, S. Vijayan, I. Bakst, Shuyang Xiao, M. Kramer, P. Canfield, M. Aindow, C. Weinberger, S. Lee
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引用次数: 0

摘要

最近在[001]取向的caf2as2单晶上进行的微柱压缩实验揭示了超弹性的存在,其弹性极限非常高,超过10%。崩塌的四方相变是一种单轴收缩过程,在此过程中,As-As键在中间的ca平面上形成,是超弹性的主要机制。通常,超弹性和相关的结构转变受微观结构和温度的强烈影响。因此,在本研究中,我们通过原位低温微力学测试和透射电镜研究相结合的方法,研究了微观结构和温度如何影响从溶液生长单晶中切割出来的[001]取向CaFe 2 As 2微柱的超弹性。结果表明,caf2as2的微观结构受晶体生长条件和后续热处理的强烈影响。Ca、As空位和FeAs纳米沉淀物的存在显著影响了材料的力学行为。此外,随着温度的降低,坍塌的四方相变的起始应力逐渐减小。这些实验结果主要是根据As-As键的形成来讨论的,这是这种超弹性机制的基本特征。我们的研究结果为caf2as 2在单轴压缩下表现出的超弹性提供了更基本的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Uniaxial Compression of [001]-Oriented CaFe 2As 2 Single Crystals: The Effects of Microstructure and Temperature on the Superelasticity, Part I: Experimental Observations
Micropillar compression experiments on [001]-oriented CaFe 2 As 2 single crystals have recently revealed the existence of superelasticity with a remarkably high elastic limit over 10%. The collapsed tetragonal phase transition, which is a uni-axial contraction process in which As-As bonds are formed across an intervening Ca-plane, is the main mechanism of superelasticity. Usually, superelasticity and the related structural transitions are affected strongly by both the microstructure and the temperature. In this study, therefore, we investigated how the microstructure and temperature affect the superelasticity of [001]-oriented CaFe 2 As 2 micropillars cut from solution-grown single crystals, by performing a combination of in-situ cryogenic micromechanical testing and transmission electron microscopy studies. Our results show that the microstructure of CaFe 2 As 2 is influenced strongly by the crystal growth conditions and by subsequent heat treatment. The presence of Ca and As vacancies and FeAs nanoprecipitates affect the mechanical behavior significantly. In addition, the onset stress for the collapsed tetragonal transition decreases gradually as the temperature decreases. These experimental results are discussed primarily in terms of the formation of As-As bonds, which is the essential feature of this mechanism for superelasticity. Our research outcomes provide a more fundamental understanding of the superelasticity exhibited by CaFe 2 As 2 under uni-axial compression.
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