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Dip pen nanolithography-deposited zinc oxide nanorods on a CMOS MEMS platform for ethanol sensing

机译:在CMOS MEMS平台上用蘸水笔纳米光刻技术沉积的氧化锌纳米棒用于乙醇感测

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This paper reports on the novel deposition of zinc oxide (ZnO) nanorods using a dip pen nanolithographic (DPN) technique on SOI (silicon on insulator) CMOS MEMS (micro electro mechanical system) microhotplates (MHP) and their characterisation as a low-cost, low-power ethanol sensor. The ZnO nanorods were synthesized hydrothermally and deposited on the MHP that comprise a tungsten micro-heater embedded in a dielectric membrane with gold interdigitated electrodes (IDEs) on top of an oxide passivation layer. The micro-heater and IDEs were used to heat up the sensing layer and measure its resistance, respectively. The sensor device is extremely power efficient because of the thin SOI membrane. The electro-thermal efficiency of the MHP was found to be 8.2 degrees C mW(-1), which results in only 42.7 mW power at an operating temperature of 350 degrees C. The CMOS MHP devices with ZnO nanorods were exposed to PPM levels of ethanol in humid air. The sensitivity achieved from the sensor was found to be 5.8% ppm(-1) to 0.39% ppm(-1) for the ethanol concentration range 25-1000 ppm. The ZnO nanorods showed an optimum response at 350 degrees C. The CMOS sensor was found to have a humidity dependence that needs consideration in real-world application. The sensors were also found to be selective towards ethanol when tested in the presence of toluene and acetone. We believe that the integration of ZnO nanorods using DPN lithography with a CMOS MEMS substrate offers a low cost, low power, smart ethanol sensor that could be exploited in consumer electronics.
机译:本文报道了使用蘸笔纳米光刻(DPN)技术在SOI(绝缘体上的硅)CMOS MEMS(微机电系统)微热板(MHP)上新型沉积氧化锌(ZnO)纳米棒的方法以及它们的低成本表征,低功耗乙醇传感器。 ZnO纳米棒是水热合成的,并沉积在MHP上,该MHP包括嵌入在介电膜中的钨微加热器,在氧化物钝化层的顶部具有金指状电极(IDE)。微型加热器和IDE用于分别加热感应层并测量其电阻。由于薄的SOI膜,传感器设备具有极高的功率效率。 MHP的电热效率为8.2摄氏度mW(-1),在350摄氏度的工作温度下仅产生42.7毫瓦的功率。带有ZnO纳米棒的CMOS MHP器件暴露于PPM级潮湿空气中的乙醇。对于乙醇浓度范围为25-1000 ppm,发现从传感器获得的灵敏度为5.8%ppm(-1)至0.39%ppm(-1)。 ZnO纳米棒在350摄氏度时显示出最佳响应。发现CMOS传感器具有湿度依赖性,这在实际应用中需要考虑。在甲苯和丙酮存在下进行测试时,还发现传感器对乙醇具有选择性。我们相信,使用DPN光刻技术将ZnO纳米棒与CMOS MEMS基板集成在一起可以提供一种低成本,低功耗的智能乙醇传感器,可以在消费电子产品中加以利用。

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