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Hierarchical rutile/anatase TiO2 nanorod/nanoflower thin film: Synthesis and characterizations

机译:分层金红石/锐钛矿TiO2纳米棒/纳米摩尔薄膜:合成和表征

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Hierarchical TiO2 nanorod/nanoflower thin film was synthesized on fluorine doped fin oxide glass via hydrothermal and aqueous chemistry methods. According to field emission scanning electron microscopy results, the thin film was crack-free and uniform. Primary nanorods had an average diameter of 95 nm and a length of 2 mu m. They were perpendicular to the substrate owing to the TiO2 prenucleation. Growth of the nanoflowers on the nanorods could increase both the specific surface area and roughness. X-ray diffraction and Raman spectroscopy showed that the nanorods were rutile; while the nanoflowers were anatase. Efficient electron transfer from anatase to rutile could therefore occur. According to the diffuse transmittance spectroscopy examination, the light harvesting rate was ameliorated and the band gap energy reduced to 2.83 eV. This was attributed to the F doping the sample during synthesis. The enhancement of the photoelectrochemical activity allowed substitution of the TiO2 nanorod/nanoflower thin film for the traditional TiO2 nanorods usually used in solar cells, sensors, and photocatalytic systems.
机译:通过热热和水化学方法在氟掺杂翅片氧化物玻璃上合成了等级的TiO2纳米棒/纳米摩擦薄膜。根据场发射扫描电子显微镜结果,薄膜无裂缝和均匀。初级纳米棒的平均直径为95nm,长度为2μm。由于TiO 2 Prenucreation,它们垂直于基质。纳米棒上的纳米割草机的生长可以增加比表面积和粗糙度。 X射线衍射和拉曼光谱表明纳米棒是金红石;虽然纳米锤子是苯酸脱。因此,可能发生从锐钛酶到金红石的有效电子转移。根据漫射透射光谱检查,可以改善光收获速率,带隙能量降低至2.83eV。这归因于在合成期间掺杂样品的F.用于光电化学活性的增强允许取代TiO2纳米棒/纳米摩尔薄膜,用于通常用于太阳能电池,传感器和光催化系统的传统TiO2纳米棒。

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