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Polymer microcantilever biochemical sensors with integrated polymer composites for electrical detection

机译:聚合物微悬臂式生化传感器与集成的聚合物复合材料进行电检测

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Micro fabricated sensors based on nanomechanical motion with piezoresistive electrical readout have become a promising biochemical sensing tool. The conventional microcantilever materials are mostly silicon-based. The sensitivity of the sensor depends on Young's modulus of the structural material, thickness of the cantilever as well as on the gauge factor of the piezoresistor. UV patternable polymers such as SU-8 have a very low Young's modulus compared to the silicon-based materials. Polymer cantilevers with a piezoresistive material having a large gauge factor and a lower Young's modulus are therefore highly suited for sensing applications. In this work, a spin coatable and photopatternable mixture of carbon black (CB) and SU-8, with proper dispersion characteristics, has been demonstrated as a piezoresistive thin film for polymer microcantilevers. Results on percolation experiments of SU-8/CB composite and fabrication of piezoresistive SU-8 microcantilevers using this composite are presented. With our controlled dispersion experiments, we could get a uniform piezoresistive thin film of thickness less than 1.2 mu m and resistivity of 2.7 OMEGA cm using 10 wt percent of CB in SU-8. The overall thickness of the SU-8/ composite/SU-8 is approximately 3 mu m. We further present results on the electromechanical characterization and biofunctionalization of the cantilever structures for biochemical sensing applications. These cantilevers show a deflection sensitivity of 0.55 ppmm. Since the surface stress sensitivity is 4.1 X 10~(-3) [N/m]~(-1), these cantilevers can well be used for detection of protein markers for pathological applications.
机译:基于纳米机械运动和压阻电读数的微型传感器已经成为一种有前途的生化传感工具。常规的微悬臂材料主要是基于硅的。传感器的灵敏度取决于结构材料的杨氏模量,悬臂的厚度以及压阻器的规格系数。与硅基材料相比,可UV图案化的聚合物(例如SU-8)的杨氏模量非常低。因此,具有大尺寸系数和较低杨氏模量的压阻材料的聚合物悬臂非常适合传感应用。在这项工作中,已证明具有适当分散特性的炭黑(CB)和SU-8的可旋涂和可光图案化的混合物作为聚合物微悬臂的压阻薄膜。给出了SU-8 / CB复合材料的渗流实验结果以及使用该复合材料制造压阻SU-8微悬臂梁的结果。通过我们受控的分散实验,使用SU-8中10%的CB,我们可以获得厚度小于1.2微米,电阻率为2.7 OMEGA cm的均匀压阻薄膜。 SU-8 /复合材料/ SU-8的总厚度约为3微米。我们进一步介绍了针对生物化学传感应用的悬臂结构的机电特性和生物功能化的结果。这些悬臂的偏转灵敏度为0.55 ppm / nm。由于表面应力敏感性为4.1 X 10〜(-3)[N / m]〜(-1),因此这些悬臂梁可以很好地用于病理学应用的蛋白质标记物检测。

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