标题: | 具残留应力薄膜结构的热弹声波波传 Thermal Acoustic Wave Propagation in Stressed Thin-film Structures |
作者: | 张桓祯 Huan-Chen Chang 尹庆中 Ching-Chung Yin 机械工程学系 |
关键字: | 光声效应;热弹声波;残留应力;薄膜结构;Photoacoustic effect;Thermal acoustic wave;Residual stress;Thin-film structure |
公开日期: | 2006 |
摘要: | 光声效应主要应用于量测材料的光学、热物理性质与微结构的次表面性质。本文根据彻体波的声弹理论,推导层状介质残留应力的热弹声波理论,模拟薄膜材料的光声效应。薄膜材料广泛应用于半导体与光电元件,当薄膜材料的晶格大小与基材不一致,甚或两者热膨胀系数相异时,在薄膜上会产生残留应力。本文推导高斯分布之强度调制雷射光束照射薄膜结构表面,模拟单晶立方材料承受单轴与双轴面内残留应力的光声效应变化。以数值分析块材的彻体波与热波之相速度与振幅衰减,两者的变化均与残留应力大小呈线性关系。薄膜结构的热弹性波频散分析遭遇数值不稳定问题,故以定性方式探讨热弹性蓝姆波频散方程之波数复数根的变化。 Photoacoustic effect is used to measure optical, thermal physical properties of materials and to characterize the subsurface properties of microstructures. This thesis presents a formulation for thermal acoustic wave propagation in stressed layered media based on the acoustoelasticity for bulk acoustic waves in order to simulate photoacoustic effect of thin-film materials. Thin-film materials are broadly used in many applications of semiconductor and electro-optic devices. Due to misfit between different lattices or distinction of coefficients of thermal expansion of the heterostructures, residual stresses are frequently induced in thin film structures during fabrication. The stressed thin-film structure is insonified by an intensity modulated laser which is modeled as a Gaussian beam. The photoacoustic effects for single crystalline cubic thin-films under in-plane, uniaxial and biaxial stresses are investigated numerically. The azimuthal dependent phase velocities and attenuation factors for bulk acoustic waves and thermal waves are calculated. Variations of both are proportional to the residual stress values. Unfortunately, numerical instability occurred in solving the dispersion of thermal acoustic waves in thin-film structures. Instead, the complex-value roots of the dispersion equation for thermal acoustic Lamb waves were qualitatively discussed. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT009314565 http://hdl.handle.net/11536/78540 |
显示于类别: | Thesis |
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