纳米压痕法测量蓝宝石单晶表面硬度和还原模量的取向依赖性

Toshiro Okawa, I. Clark, K. Tashiro, H. Honma, K. Yoshihara, O. Takai
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摘要

在工业产品小型化、材料结构以纳米级精度控制的今天,块状材料局部力学性能的测量变得非常重要。特别是硬度和弹性模量是重要的力学性能。采用纳米压痕法研究了蓝宝石单晶表面硬度和还原模量的取向依赖性。使用光学千分尺测量材料硬度的传统技术无法评估几微米或更小的局部区域的机械性能。然而,纳米压痕可以测量材料非常小表面积的力学性能,并有望检测力学性能对微观结构的依赖。纳米压痕采用非常小的金刚石压痕器,测量压痕深度。使用面积函数将测量的深度转换为缩进的面积大小。压头的面积函数可以事先用标准材料(熔融石英)得到。因此,纳米压痕可以在不使用光学千分尺的情况下测量压痕面积的大小。在本报告中,纳米压痕可以检测材料力学性能的结构依赖性。样品为c轴表面的单晶蓝宝石,压头为伯氏型金刚石尖。结果表明,当压头脊线朝向单晶m轴方向时,纳米压痕硬度最低,压缩模量最大。纳米压痕可以检测材料局部力学性能的结构依赖性。
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Orientation Dependence of Hardness and Reduced Modulus of Single Crystal Sapphire Surface Measured by Nanoindentation
Nowadays, industrial products are downsized, and the structure of materials is controlled with the nanometer precision, and it becomes very important to measure the mechanical properties of local area of bulk material. Especially the hardness and the elastic modulus are important mechanical properties. The orientation dependence of hardness and reduced modulus of single crystal sapphire surface was investigated by nanoindentation. The conventional technique to measure the hardness of materials using an optical micrometer cannot evaluate mechanical properties of a local region of several µm or less. However, nanoindentation can measure mechanical properties of very small surface area of materials, and is expected to detect the micro structure dependence of mechanical properties. Nanoindentation uses very small indenter made of diamond, and measures the indentation depth. The measured depth is converted to the indented area size using the area function. The area function of the indenter can be obtained using a standard material (fused quartz) in advance. Therefore nanoindentation can measure the indented area size without using an optical micrometer. In this report, it was shown that the nanoindentation could detect the structure dependence of mechanical properties of materials. The specimen was a single crystal sapphire with c - axis surface, and the indenter was Berkovich type diamond tip. It was confirmed that the nanoindentation hardness was the lowest, and the reduced modulus was the largest, when the ridge line of indenter was oriented to the m - axis of single crystal. The nanoindentation could detect the structure dependence of a local area of mechanical properties materials.
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