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Effect of temperature gradient on simultaneously experimental determination of thermal expansion coefficients and elastic modulus of thin film materials

机译:温度梯度对同时测定薄膜材料热膨胀系数和弹性模量的影响

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Some specific experimental methods to simultaneously determine the thermal expansion coefficients alpha(F) and biaxial elastic modulus E-F/(1-nu(F)) of thin film materials have been reported recently. In these methods, the deflections or the curvature change of the thin films, deposited on two different types of circular disks with known material properties, generally can be measured with a variety of optical techniques. The temperature-dependent deflection behaviors of thin films are then obtained by heating the samples in the range from room temperature to a slightly higher temperature level at which the physical properties and microstructures of thin film materials still remain unchanged. By using the relations between stress, deflection, and temperature, the physical properties of thin films can be finally calculated by using the slopes of two lines in the stress versus temperature plot. These relations, however, are formulated under the condition of uniform temperature rise. If the heating processes of samples are conducted in the condition that there exists a small steady-state temperature gradient along the thickness of samples due to the effect of natural heat convection on the upper surface of thin film, the formulation mentioned above shall be modified. It is found that the deflection of sample induced by the small temperature gradient along the thickness due to natural heat convection is very significant and comparable to that induced by uniform temperature rise. Consequently, if the effect of this temperature gradient is carelessly disregarded in physical modeling, a significantly different value of elastic modulus may be misleadingly obtained. Some cases are exemplified and illustrated to show the influence of temperature gradient on the evaluation of material properties. (C) 2004 American Institute of Physics.
机译:最近已经报道了一些同时确定薄膜材料的热膨胀系数α(F)和双轴弹性模量E-F /(1-nu(F))的特定实验方法。在这些方法中,通常可以使用多种光学技术来测量沉积在具有已知材料特性的两种不同类型的圆盘上的薄膜的挠度或曲率变化。然后,通过将样品从室温加热到稍高的温度水平(薄膜材料的物理性质和微观结构仍保持不变)的范围内,获得薄膜的温度相关偏转行为。通过使用应力,挠度和温度之间的关系,最终可以通过使用应力与温度曲线中的两条线的斜率来计算薄膜的物理特性。但是,这些关系是在温度均匀上升的条件下制定的。如果由于自然热对流对薄膜上表面的影响,在样品的厚度沿稳态温度梯度小的条件下进行样品的加热过程,则应修改上述配方。发现由于自然热对流,由小温度梯度沿厚度引起的样品挠度非常显着,与由均匀温度上升引起的挠度相当。因此,如果在物理建模中无视该温度梯度的影响,则可能会误导获得明显不同的弹性模量值。举例说明了一些情况,以说明温度梯度对材料性能评估的影响。 (C)2004美国物理研究所。

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