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A prototype Ultraviolet Light Sensor based on ZnO Nanoparticles/Graphene Oxide Nanocomposite Using Low Temperature Hydrothermal Method

机译:基于ZnO纳米粒子/石墨烯氧化物纳米复合材料的原型紫外光传感器,低温水热法

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A new prototype UV nanosensor using ZnO nanoparticles (NPs)/graphene oxide (GO) nanocomposite (ZnO-NP/GO) on silicon substrate is reported in this paper. The hybrid nanocomposite structure has been developed by an optimized hydrothermal process at low growth temperature (~50 °C). In this hybrid nanosensor, the ZnO nanoparticles act as UV-absorbing and charge carrier generating material, while graphene with its superior electrical conductivity has been used as a charge transporting material. Various nanostructure characterization techniques were intensively utilized including SEM, EDX, XRD, FTIR and UV-VIS. Also, the I-V measurement was employed to evaluate the prototype sensor. The morphological SEM analysis showed that the ZnO-NPs (average diameter of 20 nm) were dispersed evenly on the GO sheets. As well, the EDX spectra confirmed the exact chemical composition of the intended structure. The room temperature UV-VIS measurement revealed an enhanced optical absorption of UV-light at an absorption band centered on 375 nm. The improved optical and electrical properties were observed at an optimum relative concentration of 1:10. Under UV light illumination, the measured I-V characteristic of the prototype detector exhibited a considerable photocurrent increase of the ZnO-NP/GO nanocomposite compared to pristine ZnO nanostructure. These results can be promising for future enhanced UV- sensing applications.
机译:本文报道了一种在硅衬底上使用ZnO纳米颗粒(NPS)/石墨烯(GO)纳米复合材料(ZnO-NP / Go)的新型原型UV纳米传感器。杂化纳米复合材料结构已经通过低生长温度(〜50℃)的优化水热过程开发。在该杂交纳米传感器中,ZnO纳米颗粒用作UV吸收和电荷载体产生材料,而石墨烯具有优异的导电性被用作电荷输送材料。各种纳米结构表征技术被强烈地利用,包括SEM,EDX,XRD,FTIR和UV-VI。而且,采用I-V测量来评估原型传感器。形态学SEM分析表明,ZnO-NPS(平均直径为20nm)均匀地分散在去板上。同样,EDX光谱证实了预期结构的精确化学成分。室温UV-VIS测量显示在375nm上以375nm为中心的吸收带中的UV光的增强光学吸收。以最佳的相对浓度为1:10观察到改善的光学和电性能。在紫外光照射下,与原始ZnO纳米结构相比,原型检测器的测量I-V特征表现出ZnO-NP / Go纳米复合材料的相当大的光电流增加。这些结果对于未来增强的UV感测应用可能是有希望的。

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