首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A novel structure for enhancing the sensitivity of gas sensors - alpha-Fe2O3 nanoropes containing a large amount of grain boundaries and their excellent ethanol sensing performance
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A novel structure for enhancing the sensitivity of gas sensors - alpha-Fe2O3 nanoropes containing a large amount of grain boundaries and their excellent ethanol sensing performance

机译:一种用于提高气体传感器灵敏度的新型结构-含有大量晶界的α-Fe2O3纳米绳及其出色的乙醇传感性能

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摘要

Novel one-dimensional (1D) alpha-Fe2O3 nanostructures containing a large amount of grain boundaries have been synthesized through the combination of electrospinning and precursor-calcination techniques. The as-prepared alpha-Fe2O3 nanostructures were composed of orderly arranged building blocks (alpha-Fe2O3 nanoparticles) which are connected to each other. The investigation of the morphology evolution revealed that the template fiber geometry has an influential impact on the grain growth behavior during preparation and thus the nanostructures of the final products. Different alpha-Fe2O3 nanostructures (nanostrings and nanoropes) were synthesized using different PAN nanofibers as templates. These two samples are similar in microstructures but very different in grain boundary content. FT-IR spectra, scanning electron microscopy, transmission electron microscopy, X-ray diffraction, Raman spectra, UV-vis diffuse reflection spectra and nitrogen adsorption-desorption analysis were used to characterize the structures of the synthesized products. Comparative ethanol sensing measurements between the alpha-Fe2O3 nanostrings and nanoropes were conducted. The nanoropes which contain more grain boundaries showed a 3 to 4-time enhancement in ethanol response compared to the nanostrings. The results prove that creating a large amount of well-ordered grain boundaries is an effective way to enhance the sensing performance.
机译:通过电纺丝和前驱体煅烧技术的结合,已经合成了包含大量晶界的新型一维(1D)α-Fe2O3纳米结构。所制备的α-Fe2O3纳米结构由相互连接的有序排列的构建基块(α-Fe2O3纳米颗粒)组成。对形态演变的研究表明,模板纤维的几何形状对制备过程中的晶粒生长行为有影响,因此对最终产品的纳米结构也有影响。使用不同的PAN纳米纤维作为模板合成了不同的α-Fe2O3纳米结构(纳米带和纳米绳)。这两个样品的微观结构相似,但晶界含量却大不相同。使用FT-IR光谱,扫描电子显微镜,透射电子显微镜,X射线衍射,拉曼光谱,UV-可见漫反射光谱和氮吸附-解吸分析来表征合成产物的结构。在α-Fe2O3纳米线和纳米绳之间进行了比较乙醇感测。与纳米串相比,包含更多晶界的纳米绳在乙醇响应中表现出3至4倍的增强。结果证明,创建大量有序的晶界是增强传感性能的有效方法。

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