Ferroelastic and Plastic Behaviors in Pseudo-Single Crystal Micropillars of Nontransformable Tetragonal Zirconia

H. Masuda, K. Morita, M. Watanabe, T. Hara, H. Yoshida, T. Ohmura
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引用次数: 6

Abstract

Abstract The orientation-dependent micromechanical properties of nontransformable tetragonal (t’) zirconia, which underwent a diffusionless transformation from the fluorite cubic phase and does not exhibit a stress-induced phase transformation, were characterized via pseudo-single crystal micropillar compression and electron microscopy. The t’ zirconia sample was obtained via atmospheric plasma spraying of 4.5 mol% yttria-stabilized zirconia (YSZ) powders into liquid nitrogen and consolidated into a bulk state via hot pressing at 1100°C. Dense and cylindrical micropillars were fabricated using a focused ion beam from pseudo-single crystalline regions, which exhibited a nanodomain microstructure of three t’ variants partitioned by {1 0 1}c twin boundaries with 90° symmetry. These micropillars were compressed using a flat-end diamond indenter. Near- c compressions were attributed to ferroelastic domain switching and subsequent {1 0 1}c and/or {1 1 1}c hard slips. In ferroelastic deformation, a certain t’ variant diminished, and a binary domain microstructure developed with c axes perpendicular to the compressive direction. Near- c compressions were governed by {0 0 1}c soft slips accompanied by strain hardening with negligible ferroelasticity, which resulted in buckling deformation with rotational kinking. In both the hard- and soft-slip orientations, ferroelastic toughening was observed with certain t’ variants awaken around the crack tips. Contrarily, cleavage fractures subsequent to yielding were observed in near- c compressions. In the cubic counterpart with a domain-free microstructure (8.0 mol% YSZ), ferroelastic toughening was not observed. Hence, it is viewed as the origin of enhanced toughness in t’ zirconia.
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不可变换四边形氧化锆伪单晶微柱的铁弹性和塑性行为
摘要采用伪单晶微柱压缩和电子显微镜研究了由萤石立方相转变为无扩散相变而不发生应力诱导相变的不可相变四方(t’)氧化锆的取向相关微观力学性能。将4.5 mol%钇稳定的氧化锆(YSZ)粉末常压等离子体喷涂到液氮中,在1100℃下热压固化成块状,得到t′氧化锆样品。采用聚焦离子束从伪单晶区制备致密圆柱形微柱,其纳米畴微观结构为3个t′变异体,由{1 0 1}c孪晶界划分,呈90°对称。这些微柱是用平头金刚石压头压缩的。近c压缩归因于铁弹性畴切换和随后的{1 0 1}c和/或{1 1 1}c硬滑移。在铁弹性变形中,一定的t′变异性减弱,形成了垂直于压缩方向的c轴二值畴微观结构。近c压缩由{0 0 1}c软滑移控制,伴随应变硬化,铁弹性可忽略不计,导致屈曲变形与旋转扭结。在硬滑移和软滑移取向中,铁弹性增韧在裂纹尖端周围出现一定的t′变异体。相反,在近c压缩中观察到屈服后的解理断裂。在无畴组织(8.0 mol% YSZ)的立方对应物中,没有观察到铁弹性增韧。因此,它被认为是氧化锆韧性增强的来源。
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