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Sensing performances of pure and hybridized carbon nanotubes-ZnO nanowire networks: A detailed study

机译:碳纳米管和杂化碳纳米管-ZnO纳米线网络的传感性能:详细研究

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摘要

In this work, the influence of carbon nanotube (CNT) hybridization on ultraviolet (UV) and gas sensing properties of individual and networked ZnO nanowires (NWs) is investigated in detail. The CNT concentration was varied to achieve optimal conditions for the hybrid with improved sensing properties. In case of CNT decorated ZnO nanonetworks, the influence of relative humidity (RH) and applied bias voltage on the UV sensing properties was thoroughly studied. By rising the CNT content to about 2.0 wt% (with respect to the entire ZnO network) the UV sensing response is considerably increased from 150 to 7300 (about 50 times). With respect to gas sensing, the ZnO-CNT networks demonstrate an excellent selectivity as well as a high gas response to NH3 vapor. A response of 430 to 50 ppm at room temperature was obtained, with an estimated detection limit of about 0.4 ppm. Based on those results, several devices consisting of individual ZnO NWs covered with CNTs were fabricated using a FIB/SEM system. The highest sensing performance was obtained for the finest NW with diameter (D) of 100 nm,  with a response of about 4 to 10 ppm NH3 vapor at room temperature.
机译:在这项工作中,详细研究了碳纳米管(CNT)杂化对单个和网状ZnO纳米线(NWs)的紫外线(UV)和气体传感特性的影响。改变CNT的浓度以实现具有改善的感测特性的杂化的最佳条件。在CNT装饰的ZnO纳米网络的情况下,彻底研究了相对湿度(RH)和施加的偏压对UV感测性能的影响。通过将CNT含量提高到约2.0 wt%(相对于整个ZnO网络),UV感测响应从150增加到7300(约50倍)。关于气体传感,ZnO-CNT网络表现出出色的选择性以及对NH3蒸气的高气体响应性。在室温下可获得430至50 ppm的响应,估计的检测极限约为0.4 ppm。基于这些结果,使用FIB / SEM系统制造了由覆盖有CNT的单个ZnO NW组成的几种器件。对于直径(D)为100 nm的最细NW,可获得最高的感测性能,在室温下响应约4至10 ppm的NH3蒸气。

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