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Integrated SWCNT sensors in micro-wind tunnel for air-flow shear-stress measurement

机译:集成在微风洞中的SWCNT传感器,用于测量气流的切应力

摘要

We have developed SWCNT sensors for air-flow shear-stress measurement inside a polymethylmethacrylate (PMMA) “micro-wind tunnel” chip. An array of sensors is fabricated by using dielectrophoretic (DEP) technique to manipulate bundled single-walled carbon nanotubes (SWCNTs) across the gold microelectrodes on a PMMA substrate. The sensors are then integrated in a PMMA micro-wind tunnel, which is fabricated by SU-8 molding/hot-embossing technique. Since the sensors detect air flow by thermal transfer principle, we have first examined the I–V characteristics of the sensors and confirmed that self-heating effect occurs when the input voltage is above ~1 V. We then performed the flow sensing experiment on the sensors using constant temperature (CT) configuration with input power of ~230 μW. The voltage output of the sensors increases with the increasing flow rate in the micro-wind tunnel and the detectable volumetric flow is in the order of 1 × 10−5m3/s. We also found that the activation power of the sensors has a linear relation with 1/3 exponential power of the shear stress which is similar to conventional hot-wire and polysilicon types of convection-based shear-stress sensors. Moreover, measurements of sensors with different overheat ratios were compared, and results showed that sensor is more sensitive to the flow with a higher overheat ratio.
机译:我们开发了SWCNT传感器,用于在聚甲基丙烯酸甲酯(PMMA)“微风洞”芯片内进行气流剪切应力测量。通过使用介电电泳(DEP)技术操纵穿过PMMA基板上的金微电极的成束的单壁碳纳米管(SWCNT),可以制造传感器阵列。然后将传感器集成到PMMA微风洞中,该风洞通过SU-8模制/热压印技术制造。由于传感器通过传热原理检测气流,因此我们首先检查了传感器的I–V特性,并确认了当输入电压高于〜1V时会发生自热效应。然后,我们对传感器进行了流量传感实验传感器采用恒温(CT)配置,输入功率约为230μW。传感器的电压输出随着微风洞中流速的增加而增加,并且可检测的体积流量约为1×10-5m3 / s。我们还发现,传感器的激活功率与剪切应力的1/3指数功率成线性关系,这与基于对流的传统热线和多晶硅类型的剪切应力传感器相似。此外,比较了具有不同过热率的传感器的测量结果,结果表明,传感器对具有较高过热率的流量更敏感。

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