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首页> 外文期刊>Nanotechnology >Plasmonic Ag nanoparticles arbitrated enhanced photodetection in p-NiO/n-rGO heterojunction for future self-powered UV photodetectors
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Plasmonic Ag nanoparticles arbitrated enhanced photodetection in p-NiO/n-rGO heterojunction for future self-powered UV photodetectors

机译:p-nio / n-rgo异质结仲裁增强光电序列,用于未来的自动紫外线光电探测器

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We report on the low cost and low temperature chemical synthesis of p-type nickel oxide (NiO) and n-type reduced graphene oxide (rGO) and their integration onto ITO/glass substrate to form p-NiO/n-rGO heterojunction for possible self-powered ultraviolet (UV) photodetector applications. Different spectroscopies and microscopes were employed to study their microstructural and surface properties. Whereas, the electrical characterizations have been performed on the devices to ascertain the responsivity, detectivity, external quantum efficiency and temporal responses under dark and UV illumination. It is noteworthy that rGO has not only been used as an n-type semiconductor, but also acted as an electron transport layer, which satisfactorily separates out the electrons from the generated carrier pairs, leading to enhanced photoresponse. Furthermore, efforts were also consecrated to synthesize Ag nanoparticles (NPs) of similar to 5 nm radius. The integration of Ag NPs on the conventional NiO/rGO heterojunction facilitates an improved UV light absorption property. It was understood that the performance improvement was owed to the local surface plasmon resonance of Ag NPs within the active layer of NiO. Surprisingly, both the devices (with and without Ag NPs) exhibit photovoltaic behavior which shows its potential for self-powered device application. When the Ag NPs embedded device is concerned, it showed better on/off ratio (6.3 x 10(3)), high responsivity (72 mAW(-1)), large detectivity (3.95 x 10(12) Jones), and high efficiency (24.46%) as compared to the conventional NiO/rGO heterojunction one (without Ag NPs). The variation in the photoresponse and improved charge transport was explained through a band-diagram, which also showcases a comprehensive understanding on the operational principle of the fabricated self-powered devices. Thus, this self-powered photodetector driven by built in electric field is operated independently and can be attached with any other electronic gadgets for internet of things applications.
机译:我们报告了p型氧化镍(NIO)和N型氧化石墨烯(RGO)的低成本和低温化学合成及其在ITO /玻璃基板上的整合,以形成p-nio / n-rgo异质结自动紫外线(UV)光电探测器应用。使用不同的光谱和显微镜来研究其微观结构和表面性质。然而,已经在设备上执行了电学特性,以确定响应值,探测,外部量子效率和暗和紫外线照明下的时间响应。值得注意的是,RGO不仅被用作n型半导体,而且也用作电子传输层,其令人满意地将电子从产生的载体对分离出来,导致增强光响应。此外,还巩固努力以合成类似于5nm半径的Ag纳米颗粒(NPS)。 AG NP对常规NIO / RGO异质结的整合有助于改善的UV光吸收性能。据了解,在NIO的活性层内归因于AG NP的局部表面等离子体共振。令人惊讶的是,两个装置(带有和没有AG NPS)表现出光伏行为,其表示其对自动设备应用的潜力。当AG NPS嵌入式设备涉及时,它显示出更好的开/关比(6.3×10(3)),高响应度(72个MAW(-1)),探测器大(3.95 x 10(12)琼斯),高与常规的NIO / RGO异质结相比效率(24.46%)(没有AG NPS)。通过带状图说明了光响应和改进的电荷传输的变化,这也展示了对制造的自动装置的操作原理的综合了解。因此,通过内置电场驱动的这种自动光电探测器独立于操作,并且可以附加任何其他电子小工具,用于用于物联网应用。

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