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CMOS-compatible fabrication of top-gated field-effect transistor silicon nanowire-based biosensors

机译:基于CMOS的顶部门控场效应晶体管硅纳米线生物传感器的制造

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Field-effect transistor (FET) nanowire-based biosensors are very promising tools for medical diagnosis. In this paper, we introduce a simple method to fabricate FET silicon nanowires using only standard microelectromechanical system (MEMS) processes. The key steps of our fabrication process were a local oxidation of silicon (LOCOS) and anisotropic KOH etchings that enabled us to reduce the width of the initial silicon structures from 10 μm to 170 nm. To turn the nanowires into a FET, a top-gate electrode was patterned in gold next to them in order to apply the gate voltage directly through the investigated liquid environment. An electrical characterization demonstrated the p-type behaviour of the nanowires. Preliminary chemical sensing tested the sensitivity to pH of our device. The effect of the binding of streptavidin on biotinylated nanowires was monitored in order to evaluate their biosensing ability. In this way, streptavidin was detected down to a 100 ng mL~(-1) concentration in phosphate buffered saline by applying a gate voltage less than 1.2 V. The use of a top-gate electrode enabled the detection of biological species with only very low voltages that were compatible with future handheld-requiring applications. We thus demonstrated the potential of our devices and their fabrication as a solution for the mass production of efficient and reliable FET nanowire-based biological sensors.
机译:基于场效应晶体管(FET)纳米线的生物传感器是用于医学诊断的非常有前途的工具。在本文中,我们介绍了一种仅使用标准微机电系统(MEMS)工艺制造FET硅纳米线的简单方法。我们制造工艺的关键步骤是硅的局部氧化(LOCOS)和各向异性KOH蚀刻,这使我们能够将初始硅结构的宽度从10μm减小到170 nm。为了将纳米线变成FET,在其旁边的金上对顶栅电极进行了构图,以便通过研究的液体环境直接施加栅电压。电气特性证明了纳米线的p型行为。初步的化学感应测试了我们设备对pH的敏感性。监测链霉亲和素在生物素化的纳米线上的结合作用,以评估其生物传感能力。通过这种方式,通过施加小于1.2 V的栅极电压,可在磷酸盐缓冲液中检测到链亲和素的浓度低至100 ng mL〜(-1)。使用顶栅电极仅能非常高的检测生物种类与将来的手持式应用程序兼容的低电压。因此,我们证明了我们的设备及其制造潜力,可作为批量生产高效,可靠的基于FET纳米线的生物传感器的解决方案。

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