基于 TiO2-rGO 纳米复合材料的高响应率紫外线探测器

A. Zhumabekov, A. Kassanova, N. Ispulov, K. Dossumbekov, Zh. Ospanova, T. Dossanov, A. Kurmanov
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引用次数: 0

摘要

研究了还原氧化石墨烯的影响以及基于 rGO 和 TiO2 的纳米复合材料的光电特性。纳米复合材料的表面形态和拉曼光谱表明了初始成分的存在。研究表明,在水热合成过程中,rGO 会发生进一步的还原,即含氧基团的种类会减少。对电流-电压特性的研究表明,纳米复合材料中含有 rGO 会导致光诱导电流增加到 40 µA 以上。接着,还测定了样品的光致发光率,纳米复合材料的光致发光率比纯二氧化钛高出三个数量级。检测率也提高了 9 倍。通过这一参数可以确定设备的性能。在这方面,基于纳米复合材料的紫外检测器具有更高的性能。研究还表明,光照射的反应时间缩短。在照射时,纳米复合材料对光的反应时间比二氧化钛快三个数量级。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High responsivity UV detector based on TiO2-rGO nanocomposite material
The influence of reduced graphene oxide and the optoelectronic characterictics of a nanocomposites based on rGO and TiO2 were studied. Surface morphology and Raman spectra of nanocomposite materials indicate the presence of initial components. It has been illustrated that during hydrothermal synthesis further reduction of rGO occurs, i.e. the variety of oxygen-containing groups decreases. Studies of current-voltage characteristics have displayed the availability of rGO in the nanocomposite leads to an increase in the photo induced current to more than 40 µA. Next, the photoresponsivity of the samples was determined, which is three orders of value higher than pure titanium dioxide for nano-composite material. And the detectivity also increased 9 times. This parameter allows you to identify the performance of the device. In this regard, the UV detector based on nanocomposite has a higher performance. Studies also show a decrease in reaction time to light irradiation. When irradiated, the nanocomposite material reacts to light three orders of magnitude faster than TiO2.
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