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Synthesis and enhanced ethanol sensing characteristics of alpha-Fe2O3/SnO2 core-shell nanorods

机译:α-Fe2O3/ SnO2核壳纳米棒的合成及增强的乙醇感测特性

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摘要

alpha-Fe2O3/SnO2 core-shell nanorods are synthesized via a three-step process. X-ray diffraction (XRD), scanning electron microscopy (SEM) and transmission electron microscopy (TEM) analyses reveal that their diameters and lengths are respectively in the ranges 35-120 nm and 0.35-1.2 mu m, and the thickness of the shell composed of 3.5 nm SnO2 nanoparticles is about 10 nm. The core-shell nanostructures exhibit a dramatic improvement in ethanol sensing characteristics compared to pure alpha-Fe2O3 nanorods. The sensor response is up to 19.6 under 10 ppm ethanol exposure at 220 degrees C. Both the response time and the recovery time of the core-shell structures are less than 30 s. Based on the space-charge layer model and semiconductor heterojunction theory, the small thickness of the SnO2 shell and the formation of heterojunctions contribute to the enhanced ethanol sensing characteristics. Our results demonstrate that one-dimensional metal oxide core-shell nanostructures whose shell thickness is smaller than the Debye length are very promising materials for fabricating gas sensors with good performances.
机译:α-Fe2O3/ SnO2核壳纳米棒是通过三步法合成的。 X射线衍射(XRD),扫描电子显微镜(SEM)和透射电子显微镜(TEM)分析表明,它们的直径和长度分别在35-120nm和0.35-1.2μm的范围内,并且壳的厚度由3.5 nm SnO2纳米颗粒组成的约10 nm。与纯α-Fe2O3纳米棒相比,核-壳纳米结构在乙醇感测特性方面显示出显着改善。在220摄氏度的10 ppm乙醇暴露下,传感器响应高达19.6。核壳结构的响应时间和恢复时间均小于30 s。基于空间电荷层模型和半导体异质结理论,SnO2壳的小厚度和异质结的形成有助于增强乙醇感测特性。我们的结果表明,壳厚度小于德拜长度的一维金属氧化物核-壳纳米结构是制造具有良好性能的气体传感器的非常有前途的材料。

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