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NANOWIRE INTEGRATED MICROELECTRODE ARRAYS FOR LAB-ON-A-CHIP APPLICATIONS

机译:用于实验室应用的纳米线集成微电极阵列

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The monitoring of biological signals generated during nerve excitation and cell-to-cell communication are important for design and development of novel materials and methods for laboratory analysis. In-vitro biological applications such as drug screening and cell separation also require cell-based biosensors. The sensing technology is based on the optical or electrical read-out from the lab-on-a-chip. The electrophysiological activity of certain cells such as neurons and cardiac cells are monitored using planar microelectrode arrays integrated with microfluidic devices. One of the main issues of the current microelectrode array design is the difficulty in selective integration and the size dependency of its impedances along with a large amount of noise in the circuit due to this mismatch. It is quite evident that nanotechnology can solve these problems and an efficient electrical interconnection is possible using nanodevices. This paper presents the design and development of planar microelectrode arrays integrated with vertically aligned nanowires for lab-on-a-chip device applications. The higher surface area densities of such nanowire integrated microelectrode arrays show promising results in impedance control for the integration of lab-on-a-chip devices. We have fabricated microelectrode arrays on silicon and flexible polymer substrates and vertically aligned nanowires were fabricated onto it using template method. High degree of specific growth is obtained by controlling the nanowire growth parameters.
机译:在神经激励和细胞对细胞通信期间产生的生物信号的监测对于设计和开发新颖的材料和用于实验室分析的方法是重要的。体外生物应用,例如药物筛选和细胞分离也需要基于细胞的生物传感器。传感技术基于来自芯片的实验室的光学或电气读出。使用与微流体装置集成的平面微电极阵列监测某些细胞如神经元和心脏细胞的电生理活性。目前微电极阵列设计的主要问题之一是由于这种不匹配导致的电路中的噪声大量噪声以及电路中的大量噪声。很明显,纳米技术可以解决这些问题,并且使用NanoDemices可以实现有效的电互连。本文介绍了平面微电极阵列的设计和开发,该阵列与垂直对齐的纳米线用于实验室芯片装置应用。这种纳米线集成微电极阵列的较高表面积密度表明,有希望的阻抗控制对于集成实验室的装置的阻抗控制。我们在硅上制造了微电极阵列,使用模板法制造柔性聚合物基板和垂直对齐的纳米线。通过控制纳米线生长参数获得高度的特异性生长。

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