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Sensing properties of buffered and not buffered carbon nanotubes by fibre optic and acoustic sensors

机译:光纤和声波传感器对缓冲和非缓冲碳纳米管的传感特性

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Single-walled carbon nanotubes (SWCNTs) are advanced nanostructured materials with promising sensing properties in terms of sensitivity, low sub-ppm limit of detection, on-line and real-time vapour detection, at room temperature. This work is focused on the study of the sensitivity to aromatic volatile organic compounds (VOCs) of standard silica optical fibre (SOF) and quartz crystal microbalance (QCM) sensors incorporating Langmuir-Blodgett multilayers of SWCNTs. Multilayers of SWCNTs with different thicknesses and successfully transferred directly onto the sensors' surface were tested for the detection of toluene and xylene at room temperature and compared with the sensing performances of SWCNT multilayers buffered by a linker multilayer of cadmium arachidate. The optical and acoustic sensors' principle of operation relies respectively on the complex dielectric function and mass change induced by target analyte molecules adsorbed into the sensitive nanomaterials. A time division multiplexing approach for both optical and acoustic chemical sensors has been exploited in order to simultaneously test up to eight SOF and six QCM sensors. The results obtained demonstrate that the sensors based on SWCNTs provide high sensitivity, very low limits of VOC detection and fast response, at room temperature, with a clear dependence of the sensors' sensitivities on the nanomaterial thickness. Furthermore, higher sensitivity was observed in the case of optical fibre sensors exposed to xylene; in addition, behaviour with the opposite sign in the optical response occured between buffered and not buffered SWCNTs overlayers. Also, effects of humidity have been investigated in the case of optical fibre sensors demonstrating a linear dependence of the response at a constant temperature of 28 deg C.
机译:单壁碳纳米管(SWCNT)是先进的纳米结构材料,在室温下,在灵敏度,低ppm检测限,在线和实时蒸气检测方面具有令人鼓舞的传感特性。这项工作的重点是研究结合了SWCNT的Langmuir-Blodgett多层膜的标准二氧化硅光纤(SOF)和石英晶体微天平(QCM)传感器对芳族挥发性有机化合物(VOC)的敏感性。测试了具有不同厚度并成功直接转移到传感器表面的SWCNT的多层膜在室温下的检测甲苯和二甲苯的性能,并将其与花生四烯酸镉连接基缓冲的SWCNT多层膜的传感性能进行了比较。光学和声学传感器的工作原理分别取决于由吸附到敏感纳米材料中的目标分析物分子引起的复杂介电功能和质量变化。为了同时测试多达八个SOF和六个QCM传感器,已经开发了一种针对光学和声学化学传感器的时分多路复用方法。获得的结果表明,基于SWCNT的传感器在室温下具有很高的灵敏度,极低的VOC检测极限和快速响应,并且传感器的灵敏度与纳米材料的厚度有明显的相关性。此外,在光纤传感器暴露于二甲苯的情况下,观察到更高的灵敏度。此外,在缓冲的和未缓冲的SWCNT叠层器之间发生了光学响应中具有相反符号的行为。另外,在光纤传感器的情况下,已经研究了湿度的影响,证明了在28摄氏度的恒定温度下响应的线性相关性。

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