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Vacuum-deposited wave-guiding layers on STW resonators based on LiTaO_3 substrate as love wave sensors for chemical and biochemical sensing in liquids

机译:基于LiTaO_3基板的STW谐振器上的真空沉积波导层,用作液体中化学和生化传感的爱波传感器

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摘要

A promising approach to apply the Love wave concept to commercially available low-loss surface acoustic wave (SAW) devices of the type Murata SAF 380 is presented. Thin wave-guiding layers of variable thickness are coated on the piezoelectric substrate of the devices. Two different layer materials were used: sputtered SiO_2 and a new polymer in this field, parylene C (poly-[2-chloro-p-xylylene]). Insertion loss, resonance frequency, frequency changes during protein precipitation and noise of the devices are discussed as a function of the thickness of the wave-guiding layer. It is demonstrated that the application of an optimized wave-guiding layer increases the sensitivity. When using SiO_2 as wave-guiding layer, an optimum layer thickness of 4 μm leads to a detection limit of 1.7 pg/mm~2. Therefore, the detection limit is improved by factor 7.7 as compared to uncoated SAW devices. Parylene-coated devices reach a detection limit of 2.9 pg/mm~2 at an optimum layer thickness of 0.5 μm. This corresponds to an improvement by factor 4.3. As the SAW devices used in this study are commercially available at low costs, applying appropriate wave-guiding layers permits an application as chemical or biochemical sensors with excellent sensitivities. Moreover, parylene-coated devices combine the sensitivity increase by excitation of Love waves with an excellent protective effect against corrosive attacks by the surrounding medium. Therefore, these sensors are most suitable for biosensing in conducting buffer solutions.
机译:提出了一种将Love波概念应用于市售的Murata SAF 380型低损耗表面声波(SAW)设备的有前途的方法。可变厚度的薄波导层被涂覆在器件的压电基板上。使用了两种不同的层材料:溅射的SiO_2和该领域的一种新聚合物,聚对二甲苯C(聚-[2-氯-对-亚二甲苯基])。讨论了插入损耗,共振频率,蛋白质沉淀过程中的频率变化以及器件的噪声,它们是波导层厚度的函数。结果表明,优化波导层的应用提高了灵敏度。当使用SiO 2作为波导层时,最佳的层厚度为4μm导致检测极限为1.7 pg / mm〜2。因此,与未镀膜的SAW器件相比,检测极限提高了7.7倍。聚对二甲苯涂层的器件在0.5μm的最佳层厚度下达到2.9 pg / mm〜2的检测极限。这相当于提高了4.3倍。由于本研究中使用的SAW器件可以低成本购得,因此应用合适的波导层可以用作具有出色灵敏度的化学或生化传感器。此外,聚对二甲苯涂层的设备将通过激发洛夫波而增加的灵敏度与对周围介质的腐蚀侵蚀的出色保护作用结合在一起。因此,这些传感器最适合用于进行缓冲溶液的生物传感。

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