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Light Trapping-Mediated Room-Temperature Gas Sensingby Ordered ZnO Nano Structures Decorated with Plasmonic Au Nanoparticles

机译:光阱介导的室温气体传感等离子体金纳米颗粒修饰的有序ZnO纳米结构

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摘要

An ordered array of 1D ZnO nanorods obtained by colloidal templating is shown to dramatically enhance the sensing response of NOx at room temperature by confining light and creating periodic structures. The sensitivity is measured for a concentration varying from 2 to 10 ppm (response 53% at 10 ppm) at room temperature under white light illumination with ≈225 nm hole diameter. In contrast, structures with ≈450 nm hole size show better sensing under (response 98% at 10 ppm) elevated temperatures in dark conditions, which is attributed to the increased surface chemical interactions with NOx molecules due to the porous nature and enhanced accessible surface area of ZnO nanorods. Further, the decoration of ZnO Nanorods with gold nanoparticles shows enhanced sensor performance (response 130% at 10 ppm) due to localized surface plasmon resonance under white light illumination. The findings may lead to new opportunities in the visible light-activated room-temperature NOx sensors for healthcare applications.
机译:通过胶体模板获得的一维ZnO纳米棒的有序阵列显示,通过限制光并创建周期性结构,可以显着增强室温下NOx的传感响应。在室温下在约225 nm孔径的白光照射下,测量浓度范围为2至10 ppm(在10 ppm时响应为53%)的灵敏度。相比之下,孔尺寸约为450 nm的结构在黑暗条件下(在10 ppm时响应98%)在黑暗条件下的高温下表现出更好的感测,这归因于多孔性质和增加的可及表面积,与NOx分子的表面化学相互作用增加ZnO纳米棒。此外,由于白光照射下的局部表面等离振子共振,用金纳米颗粒装饰ZnO纳米棒显示出增强的传感器性能(在10 ppm时响应为130%)。该发现可能会为医疗保健应用带来可见光激活的室温NOx传感器的新机遇。

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