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Controllable synthesis and enhanced gas sensing properties of a single-crystalline WO3–rGO porous nanocomposite

机译:WO 3 –rGO单晶多孔纳米复合材料的可控合成及增强的气敏性能

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In this paper, we report on a facile hydrothermal approach combined with a subsequent annealing process for the controllable synthesis of a single-crystalline WO3–rGO porous nanocomposite. The crystal structure, morphology and chemical composition of the as-obtained product were well-characterized by X-ray diffraction, transmission electron microscopy, X-ray photoelectron spectroscopy, Fourier transform infrared spectroscopy and Brunauer–Emmett–Teller analysis. The results indicate that this hybrid structure is composed of single-crystal WO3 porous nanoflakes with a size of 500 × 500 nm2 growing through or anchoring into a sheet-like rGO matrix. We explore the sensing performance of the gas sensor based on the as-synthesized product. Impressively, gas testing shows that the WO3–rGO nanocomposite exhibits an excellent kinetic response speed and good sensitivity toward NO2 and some volatile organic compound pollutants at a low temperature (90 °C). The pseudo 3-D structure provides many channels for gas diffusion and clearly enhances sensing properties. As such, this graphene-based composite shows promising potential as a high-performance gas sensing material for real-time gas detection.
机译:在本文中,我们报告了一种简便的水热方法,结合随后的退火工艺,可控制合成WO 3 -rGO单晶多孔纳米复合材料。通过X射线衍射,透射电子显微镜,X射线光电子能谱,傅里叶变换红外光谱和Brunauer-Emmett-Teller分析,可以很好地表征所获得产品的晶体结构,形态和化学组成。结果表明,这种杂化结构由单晶的WO 3 多孔纳米薄片组成,尺寸为500×500 nm 2 通过或锚定在片状rGO矩阵中。我们探索了基于合成产品的气体传感器的传感性能。令人印象深刻的是,气体测试表明,WO 3 –smallrGO纳米复合材料具有出色的动力学响应速度和对NO 2 的敏感性低温(90°C)下的一些挥发性有机化合物污染物。伪3-D结构为气体扩散提供了许多通道,并明显增强了感测性能。因此,这种基于石墨烯的复合材料显示出作为用于实时气体检测的高性能气体传感材料的潜力。

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