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Photocatalytic TiO_2 macroscopic fibers obtained through integrative chemistry

机译:集成化学法制备的光催化TiO_2宏观纤维

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The photocatalytic properties of titanium dioxide depend not only on its electronic properties, but also on the material size and shape, which can increase interactions between the reactants and catalyst. Most studies to date show that reducing the particle size down to the nanoscale increases photocatalytic efficiency, as a result of a higher surface to volume ratio and because a larger proportion of the material is actually irradiated by light. We demonstrate that a multiscale shape design, which integrates surface roughness, particle shape, and 1D material processing and orientation, can favor photocatalytic properties in the solid-gas regime, especially mineralization (conversion into CO_2), when the hierarchical 1D orientation of the material is combined with unidirectional gas flow. Several materials with hierarchical structure were prepared and characterized. They have been tested for the photocatalytic mineralization of gaseous acetone and compared with commercial catalysts. Our study reveals that a suitable combination of multiscale design and optimization of the material orientation and gas flow favors high mineralization. Titania fibers were prepared with a hierarchical structure to identify the multiscale structural parameters that contribute to enhance the photocatalytic degradation of volatile organic compounds (VOCs), especially their conversion into CO 2 (mineralization).
机译:二氧化钛的光催化性能不仅取决于其电子性能,还取决于材料的尺寸和形状,这会增加反应物与催化剂之间的相互作用。迄今为止,大多数研究表明,由于较高的表面体积比,以及由于实际上有较大比例的材料被光照射,因此将粒径减小至纳米级可以提高光催化效率。我们证明了一种集成了表面粗糙度,颗粒形状以及一维材料处理和取向的多尺度形状设计,当材料的层级一维取向时,它有利于固态气体状态下的光催化性能,尤其是矿化(转化为CO_2)。与单向气流相结合。准备并表征了几种具有层次结构的材料。已对它们进行了气态丙酮的光催化矿化测试,并与商业催化剂进行了比较。我们的研究表明,多尺度设计与材料定向和气流优化的适当组合有利于高矿化。制备具有分级结构的二氧化钛纤维,以鉴定有助于增强挥发性有机化合物(VOC)的光催化降解,尤其是将其转化为CO 2(矿化)的多尺度结构参数。

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