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Chromium oxide loaded silica aerogels: novel visible light photocatalytic materials for environmental remediation

机译:负载氧化铬的二氧化硅气凝胶:用于环境修复的新型可见光光催化材料

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摘要

Various photocatalytic systems have been reported for degradation of harmful air pollutants. Most of the reported catalysts are based on well-known semiconducting material, Titanium Dioxide (TiO[subscript 2]), while some are based on other materials such as Silicon Dioxide (SiO[subscript 2]), various Zeolites. However, titania based systems are very popular in this regard and the most of the photocatalytic processes that involve titania are considered non-localized. Thus, to study the photocatalytic ability of a localized system, novel aerogel based samples were studied using silica and chromium and tested for photocatalytic activities. The new photocatalytic systems were prepared to obtain aerogel silica as the matrix material by cohydrolyzing silica precursor with chromium(III) ions to obtain chromium loaded silica materials. Later, these prepared samples were compared to chromium loaded titania and mixed silica-titania systems. All the prepared systems have high surface areas compared to the systems that have been reported in literature. Samples were characterized by X-ray diffraction, Diffusive reflectance UV spectroscopy, and BET surface analysis methods. The kinetics of photocatalytic degradation of a model pollutant, acetaldehyde, was performed using a Shimadzu GCMS-QP 5000 instrument and a glass reactor with a quartz window. Change in photocatalytic activity was found with various molar ratios of SiO[subscript 2] to TiO[subscript 2]. From all the systems, chromium loaded pure SiO[subscript 2] showed the highest activity towards acetaldehyde degradation compared to mixed systems and TiO[subscript 2] based systems. The interesting photocatalytic activity of silica based materials occurs due to the efficient insertion of chromium ions into silica matrix to generate reactive sites. The photo excitation is believed to occur at molecular orbital level at localized chromium sites.
机译:据报道,各种光催化系统可降解有害空气污染物。已报道的大多数催化剂均基于众所周知的半导体材料二氧化钛(TiO [下标2]),而某些则基于其他材料,例如二氧化硅(SiO [下标2]),各种沸石。然而,基于二氧化钛的系统在这方面非常受欢迎,并且涉及二氧化钛的大多数光催化过程被认为是非局部的。因此,为了研究局部系统的光催化能力,使用二氧化硅和铬研究了基于气凝胶的新型样品,并测试了其光催化活性。制备了新的光催化体系,通过将二氧化硅前体与铬(III)离子共水解以获得负载铬的二氧化硅材料,从而获得气凝胶二氧化硅作为基质材料。随后,将这些制备的样品与负载铬的二氧化钛和二氧化硅-二氧化钛混合体系进行了比较。与文献中报道的系统相比,所有制备的系统均具有较高的表面积。通过X射线衍射,漫反射紫外光谱和BET表面分析方法对样品进行表征。使用Shimadzu GCMS-QP 5000仪器和带有石英窗的玻璃反应器进行模型污染物乙醛的光催化降解动力学。发现SiO [下标2]与TiO [下标2]的摩尔比不同时,光催化活性发生变化。在所有系统中,与混合系统和基于TiO [下标2]的系统相比,负载铬的纯SiO [下标2]显示出最高的乙醛降解活性。二氧化硅基材料的有趣的光催化活性是由于铬离子有效插入二氧化硅基体中以产生反应位点而发生的。据信光激发发生在局部铬位点的分子轨道水平上。

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