高频厚度-剪切模谐振器的设计、制造和表征

J. Rabe, S. Buttgenbach, B. Zimmermann, P. Hauptmann
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引用次数: 30

摘要

以厚度-剪切模式振动的at切割石英晶体是众所周知的质量敏感器件。在石英盘的一个或两个表面上沉积敏感层后,这些谐振器适用于用作气体和液体介质中分析的化学传感器,称为石英晶体微天平(QCM)。到目前为止,这些谐振器的谐振频率为5至30兆赫兹。结合光刻和蚀刻工艺的应用为制造具有更高谐振频率(高达75 MHz)和更小直径的石英谐振器提供了新的有前途的方法。通过光学显微镜、扫描电镜和表面轮廓分析对谐振器进行了光学和机械表征,并通过阻抗分析对谐振器进行了电学表征。蚀刻表面非常光滑和平行,导致高q因子高达5/spl /10/sup 4/,这是优秀的高频谐振器。128 /spl mu/m厚的石英框架具有很高的机械稳定性。研究了表面粗糙度和蚀刻通道对谐振器性能的影响。实验研究了其在声载荷作用下的性能。结果表明,50 MHz谐振器在水中工作时阻抗相位为零。在液体介质中,粘度(/spl eta//sub L/)和密度(/spl rho//sub L/)的变化导致QCM的谐振频率(/spl Delta/f)降低。在(/spl eta//sub L//spl rho//sub L/)/sup 1/2/和/spl Delta/f之间观察到线性关系,与理论一致,而频移远高于以前的报道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design, manufacturing, and characterization of high-frequency thickness-shear mode resonators
AT-cut quartz crystals vibrating in the thickness-shear mode are well known as mass sensitive devices. After deposition of a sensitive layer on one or both surfaces of the quartz discs these resonators are suitable for the application as chemical sensors for analysis in gaseous and liquid media, which are known as quartz crystal microbalances (QCM). Up to now the resonant frequencies of these resonators are 5 to 30 MHz. The application of combined photolithographic and etching processes offers new promising approaches for the manufacturing of quartz resonators with higher resonant frequencies, up to 75 MHz, and smaller diameters. Resonators were fabricated and subsequently characterized optically and mechanically by means of light microscopy, SEM, and surface profiling and electrically by means of impedance analysis. The etched surfaces are very smooth and parallel, leading to high Q-factors up to 5/spl middot/10/sup 4/, which is excellent for high frequency resonators. A high mechanical stability due to the 128 /spl mu/m thick quartz frame was proofed. The influences of surface roughness and etch channels on the resonators' performance were examined. The behaviour under acoustic load was investigated experimentally. The results showed that 50 MHz resonators operated in water reach zero phase of impedance. In liquid media, changes in the viscosity (/spl eta//sub L/) and density (/spl rho//sub L/) lead to a decrease of the resonant frequency (/spl Delta/f) of the QCM. A linear relationship between (/spl eta//sub L//spl rho//sub L/)/sup 1/2/ and /spl Delta/f was observed, in agreement with theory, while the frequency shifts are much higher than reported before.
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