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A nano-microstructured artificial-hair-cell-type sensor based on topologically graded 3D carbon nanotube bundles

机译:基于拓扑渐变3D碳纳米管束的纳米微结构人造毛细胞型传感器

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摘要

A design for a unique artificial-hair-cell-type sensor (AHCTS) based entirely on 3D-structured, vertically aligned carbon nanotube (CNT) bundles is introduced. Standard microfabrication techniques were used for the straightforward micro-nano integration of vertically aligned carbon nanotube arrays composed of low-layer multi-walled CNTs (two to six layers). The mechanical properties of the carbon nanotube bundles were intensively characterized with regard to various substrates and CNT morphology, e.g. bundle height. The CNT bundles display excellent flexibility and mechanical stability for lateral bending, showing high tear resistance. The integrated 3D CNT sensor can detect three-dimensional forces using the deflection or compression of a central CNT bundle which changes the contact resistance to the shorter neighboring bundles. The complete sensor system can be fabricated using a single chemical vapor deposition (CVD) process step. Moreover, sophisticated external contacts to the surroundings are not necessary for signal detection. No additional sensors or external bias for signal detection are required. This simplifies the miniaturization and the integration of these nanostructures for future microsystem set-ups. The new nanostructured sensor system exhibits an average sensitivity of 2100 ppm in the linear regime with the relative resistance change per micron (ppm mu m(-1)) of the individual CNT bundle tip deflection. Furthermore, experiments have shown highly sensitive piezoresistive behavior with an electrical resistance decrease of up to similar to 11% at 50 mu m mechanical deflection. The detection sensitivity is as low as 1 mu m of deflection, and thus highly comparable with the tactile hair sensors of insects, having typical thresholds on the order of 30-50 mu m. The AHCTS can easily be adapted and applied as a flow, tactile or acceleration sensor as well as a vibration sensor. Potential applications of the latter might come up in artificial cochlear systems. In particular, the stable mechanical bending of the sensor up to 90 degrees opens up unique application opportunities.
机译:介绍了一种完全基于3D结构,垂直排列的碳纳米管(CNT)束的独特人造毛细胞型传感器(AHCTS)的设计。标准的微细加工技术用于由低层多壁CNT(两层至六层)组成的垂直排列的碳纳米管阵列的直接微纳米集成。碳纳米管束的机械性能在各种基材和CNT形态方面得到了深入的表征。束高度。 CNT束显示出出色的柔韧性和横向弯曲机械稳定性,显示出高抗撕裂性。集成的3D CNT传感器可以使用中心CNT束的偏转或压缩来检测三维力,这会改变与较短的相邻束的接触电阻。可以使用单个化学气相沉积(CVD)工艺步骤来制造完整的传感器系统。此外,信号检测不需要复杂的外部环境接触。无需额外的传感器或用于信号检测的外部偏置。这简化了这些纳米结构的小型化和集成,可用于将来的微系统设置。新的纳米结构传感器系统在线性状态下平均灵敏度为2100 ppm,每个CNT束尖端偏转的每微米相对电阻变化(ppmμm(-1))。此外,实验显示了高度敏感的压阻行为,在50微米的机械挠度下电阻降低了近11%。检测灵敏度低至1微米的挠度,因此与昆虫的触觉毛发传感器高度可比,其典型阈值约为30至50微米。 AHCTS可以轻松地改装并用作流量,触觉或加速度传感器以及振动传感器。后者的潜在应用可能出现在人工耳蜗系统中。特别是,传感器高达90度的稳定机械弯曲开辟了独特的应用机会。

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