硅/PPT/硅结构声波导的制备与表征及各种模型的衍射效应分析

F. Bassignot, G. Ulliac, T. Laroche, Julien Garcia, E. Courjon, S. Ballandras, J. Lesage
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摘要

在本文中,我们提出了一个新的声学波导概念的发展的新结果。由周期极化换能器(PPT)激发并由导向层引导的声波。周期性极化换能器作为传统数字间换能器的一种替代方法,最近被研究用于引导声波的激发和探测。在3英寸和4英寸500微米厚的铌酸锂(LiNbO3)和钽酸盐(LiTaO3) z切割晶圆上实现了工作在50 - 500 MHz范围内的PPTs的制造。提出的紧凑结构允许基于Si/LiNbO3/Si材料组合的简化封装进行高频操作。为了找到与特定厚度/周期比相对应的工作点,研究了这种结构的色散特性。两个主要器件已被制造,一个Si/500微米厚PPT/Si结构用于验证概念,一个Si/20微米厚PPT/Si结构用于仅激发一个声波以衍射该波。将被测器件的实验响应与预测谐波导纳进行了比较,结果表明两者吻合较好。对两种结构的激发波的温度敏感性进行了测量和预测。最后,我们揭示了阻抗不匹配产生散射效应的不同结构。
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Fabrication and characterization of acoustic waveguides using Silicon/PPT/Silicon structures and analysis of diffraction effects for various modelings
In this paper, we present new results on the development of a new acoustic waveguide concept using an. acoustic wave excited by a Periodically Poled Transducer (PPT) and guided by guiding layers. Periodically poled transducers have been investigated recently as an alternative to classical inter-digital transducers for the excitation and detection of guided acoustic waves. The fabrication of PPTs operating in the range 50 – 500 MHz has been achieved on 3 and 4 inches 500 µm thick lithium niobate (LiNbO3) and tantalate (LiTaO3) Z-cut wafers. The compact structure proposed allows high frequency operation with a simplified package based on Si/LiNbO3/Si material combination. Dispersion properties have been studied for this structure in order to find operating points corresponding to a specific thickness/period ratio. Two main devices have been fabricated, a Si/500 µm thick PPT/Si structure in order to validate the concept and a Si/20 µm thick PPT/Si structure to excite only one acoustic wave in the purpose of diffracting this wave. The experimental responses of the tested devices are compared to the predicted harmonic admittances, showing a good agreement between both results. The temperature sensitivity of the excited wave of both structures are also been measured and predicted. Finally, we expose different structures with impedance mismatches generating scattering effects.
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