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Photocatalytic activity of ZnO-TiO2 hierarchical nanostructure prepared by combined electrospinning and hydrothermal techniques

机译:电纺丝-水热技术制备的ZnO-TiO2 纳米结构的光催化活性

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In this study, a new hierarchical nanostructure consisting of zinc oxide (ZnO) and titanium dioxide (TiO2) was prepared by an electrospinning process followed by a hydrothermal technique for use as a photocatalyst for dye degradation. First, the electrospinning of a colloidal solution consisting of titanium isopropoxide/poly(vinyl acetate)/zinc nanoparticles was performed to produce polymeric nanofibers embedded in solid nanoparticles. Calcination of the obtained electrospun nanofiber mats in air at 600 °C produced TiO2 nanofibers containing ZnO nanoparticles (i.e., ZnO-doped TiO2 nanofibers). The ZnO nanoparticles formed were then exploited as seeds to produce the outgrowth ZnO branches around the TiO2 nanofibers using the hydrothermal technique. Photodegradation of methyl red and rhodamine B (RB) dyes was examined individually using four photocatalysts: ZnO nanoparticles prepared by the same hydrothermal technique, pristine TiO2 nanofibers, ZnO-doped TiO2 nanofibers and the produced nanostructure. The results showed that the introduced ZnO-TiO2 hierarchical nanostructure can eliminate all the methyl red dye within 90 min and the rhodamine B dye within 105 min. However, the other three nanostructures could not totally remove any of the dyes, even after 3 h. Therefore, the introduced nanostructure has higher photocatalytic activity than any of its ingredients individually, which highlights the advantages of synthesizing this novel structure.
机译:在这项研究中,通过电纺丝工艺和水热技术制备了由氧化锌(ZnO)和二氧化钛(TiO2 )组成的新的分层纳米结构,用作染料降解的光催化剂。首先,对由异丙醇钛/聚醋酸乙烯酯/锌纳米颗粒组成的胶体溶液进行静电纺丝,以生产嵌入固体纳米颗粒中的聚合物纳米纤维。在空气中于600°C下煅烧所得的电纺纳米纤维毡,得到的是含有ZnO纳米颗粒的TiO2 纳米纤维(即ZnO掺杂的TiO2 纳米纤维)。然后利用水热技术将形成的ZnO纳米粒子作为种子,在TiO2 纳米纤维周围产生ZnO支链。使用四种光催化剂分别研究了甲基红和若丹明B(RB)染料的光降解:通过相同的水热技术制备的ZnO纳米颗粒,原始的TiO2 纳米纤维,掺杂ZnO的TiO2 纳米纤维和所产生的纳米结构。结果表明,引入的ZnO-TiO2 纳米结构可在90min内消除所有甲基红染料,在105min内消除若丹明B染料。但是,其他三个纳米结构甚至在3小时后仍无法完全去除任何染料。因此,引入的纳米结构比单独的任何其成分具有更高的光催化活性,这突出了合成这种新颖结构的优点。

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