表面声波微器件中二维声子晶体的设计与制备

K. Gu, C. Chang, J. Shieh, W. Shih
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引用次数: 7

摘要

在本文中,我们设计和制造了一种集成了两组数字间电极的声子晶体,用于表面声波(SAW)的频带选择。该器件的潜在应用包括声表面波微传感器的性能改进、射频电路的前端元件以及高频声波的定向接收。与光子晶体产生的带隙类似,声子晶体是由两种不同的弹性材料组成的二维重复结构,可以阻止具有特定入射角或一定带宽的弹性波的传播。本文通过在微机械声表面波谐振器和接收器之间制作声子晶体,验证了禁止带宽。谐振器和接收器都由沉积在薄压电层上的IDT电极组成。为了将禁止带宽限制在100 MHz量级,声子晶体中圆形孔的直径设计为6微米,每个孔的纵横比为3:1。为了使从IDT电极到SAW的功率转换最大化,两个中间数字之间的间距是SAW波长的四分之一。具体来说,根据中心频率的不同,间距范围从3.4微米到9.0微米。表面微加工和本体微加工结合在一起制造晶体以及SAW谐振器和接收器。首先,将具有明确中心频率的1.5微米氧化锌溅射到硅衬底上并形成图案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Fabrication of 2D Phononic Crystals in Surface Acoustic wave Micro Devices
In this paper, we present the design and fabrication of innovative phononic crystals integrated with two sets of interdigital (IDT) electrodes for frequency band selection of surface acoustic waves (SAW). The potential applications of this device include performance improvement of SAW micro-sensors, front-end components in RF circuitries, and directional receptions of high frequency acoustic waves. Analogous to the band-gap generated by photonic crystals, the phononic crystals, two dimensional repetitive structures composed of two different elastic materials, can prohibit the propagation of elastic waves with either specific incident angles or certain bandwidth. In this paper, the prohibited bandwidth has been verified by fabricating the phononic crystals between a micromachined SAW resonator and a receiver. Both the resonator and receiver are composed of IDT electrodes deposited and patterned on a thin piezoelectric layer. To confine the prohibited bandwidth on the order of hundred MHz, the diameter of the circular pores in phononic crystals is designed to be 6 micron and the aspect ratio of each pore is 3:1. To maximize the power transduction from IDT electrodes to SAW, the spacing between two inter-digits is one-fourth the wavelength of SAW. Specifically, the spacing ranges from 3.4 microns to 9.0 microns, depending on the central frequency. Both surface and bulk micromachining are employed and integrated to fabricate the crystals as well as SAW resonator and receiver altogether. Firstly, a 1.5-micron zinc oxide, which provides well-defined central frequency, is sputtered and patterned onto silicon substrate.
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