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Wireless identification and sensing using surface acoustic wave devices

机译:使用表面声波设备进行无线识别和感应

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摘要

Wireless Surface Acoustic Wave (SAW) devices were fabricated and tested using planar Lithium Niobate (LiNbO₃) as substrate. The working frequencies were in the 180 MHz and 360 MHz range. Using a network analyser, the devices were interrogated with a wireless range of more than 2 metres. Trials with Electron Beam Lithography (EBL) to fabricate SAW devices working in the 2450 MHz with a calculated feature size of 350 nm are discussed. Charging problems became evident as LiNbO₃ is a strong piezoelectric and pyroelectric material. Various attempts were undertaken to neutralise the charging problems. Further investigation revealed that sputtered Zinc Oxide (ZnO) is a suitable material for attaching SAW devices on irregularly shaped material. DC sputtering was used and several parameters have been optimised to achieve the desired piezoelectric effect. ZnO was sputtered using a magnetron sputtering system with a 75 mm Zn target and a DC sputter power of 250 Watts. Several trials were performed and an optimised material has been prepared under the following conditions: 9 sccm of Oxygen and 6 sccm of Argon were introduced during the process which resulted in a process pressure of 1.2x10⁻² mbar. The coatings have been characterised using Rutherford Backscattering, X-ray diffraction, SEM imaging, and Atomic force microscopy. SAW devices were fabricated and tested on 600 nm thick sputtered ZnO on a Si substrate with a working frequency of 430 MHz. The phase velocity has been calculated as 4300m/s. Non-planar samples have been coated with 500 nm of sputtered ZnO and SAW structures have been fabricated on using EBL. The design frequency is 2450 MHz, with a calculated feature size of 1 µm. The surface roughness however prevented a successful lift-off. AFM imaging confirmed a surface roughness in the order of 20 nm. Ways to improve manufacturability on these samples have been identified.
机译:使用平面铌酸锂(LiNbO 3)作为衬底,制造并测试了无线表面声波(SAW)设备。工作频率在180 MHz和360 MHz范围内。使用网络分析仪,对这些设备进行了超过2米的无线范围询问。讨论了电子束光刻(EBL)的试验,以制造工作在2450 MHz的SAW器件,计算出的特征尺寸为350 nm。由于LiNbO 3是一种强压电和热电材料,因此充电问题变得很明显。为了消除充电问题进行了各种尝试。进一步的研究表明,溅射氧化锌(ZnO)是将SAW器件附着在不规则形状的材料上的合适材料。使用直流溅射,并且已经优化了几个参数以实现所需的压电效果。使用具有75 mm Zn靶材和250 W的DC溅射功率的磁控溅射系统溅射ZnO。进行了几次试验,并在以下条件下制备了优化的材料:在此过程中引入了9 sccm的氧气和6 sccm的氩气,导致过程压力为1.2x10 -2 mbar。使用卢瑟福反向散射,X射线衍射,SEM成像和原子力显微镜对涂层进行了表征。在工作频率为430 MHz的Si衬底上的600 nm厚溅射ZnO上制造并测试了SAW器件。相速度已计算为4300m / s。非平面样品已涂有500 nm溅射的ZnO,并且已经使用EBL制造了SAW结构。设计频率为2450 MHz,计算出的特征尺寸为1 µm。然而,表面粗糙度阻止了成功的剥离。 AFM成像确认表面粗糙度约为20 nm。已经确定了改善这些样品的可制造性的方法。

著录项

  • 作者

    Schuler Leo Pius;

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  • 年度 2003
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  • 原文格式 PDF
  • 正文语种 en
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