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Strength of Coherently Strained Nanolayers Under High Temperature Nanoindentation

机译:高温纳米温度下穿孔纳米层的强度

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Semiconductor strained layer superlattices are an ideal model material to study the effects of coherency strain in plasticity, due to the fine control of nanolayer thickness and internal strain afforded by MBE deposition. Previously, nanoindentation of bulk InGaAs at 300K gave a yield pressure of 6GPa (Jayawera et al Proc. Roy Soc, A459, 2049, 2003) while bending at 500 centigrade gave a yield value of 30MPa (P'ng et al Phil. Mag. 85, 4429, 2005). In contrast, coherently strained InGaAs superlattices gave nanoindentation values of 3GPa at room temperature and bending at 500°C gave a yield value also around 3GPa. It appears that the coherency strain can impart an athermal strengthening to the superlattice. It is clearly necessary to do mechanical testing over the range 300-800K that will be able to link the room temperature nanoindentation with the results from the high temperature bending experiment and to determine the relationship between strength, coherency strain and temperature. Preliminary experiments on these samples at elevated temperatures using a hot stage and the UMIS nanoindentation system is difficult but feasible with the help of AFM to verify the contact area.
机译:半导体应变层超晶格是一种理想的模型材料,用于研究塑性浓度的相干菌株的影响,由于MBE沉积提供的纳米层厚度和内部应变的微量控制。此前,300K的散装InGaAs的纳米凸缘屈服于6GPa(JayaWera等人Proc。Roy SoC,A459,2049,2003),同时弯曲500摄氏度的屈服值为30MPa(P'ng等人Phil。 85,4429,2005)。相反,连贯的IngaAs超晶格在室温下给予3GPa的纳米凸缘值,并且在500℃下弯曲也屈服于3gPa。似乎相干菌株可以赋予超晶格的动脉强度。在300-800K范围内有必要进行机械测试,该机械测试将能够将室温纳米凸缘与来自高温弯曲实验的结果联系起来,并确定强度,一致性和温度之间的关系。在使用热阶段和umis纳米狭窄系统的升高温度下的这些样品的初步实验是困难的,但在AFM的帮助下是可行的,以验证接触面积。

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