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首页> 外文期刊>RSC Advances >Synthesis of rattle-type magnetic mesoporous Fe3O4@mSiO(2)@BiOBr hierarchical photocatalyst and investigation of its photoactivity in the degradation of methylene blue
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Synthesis of rattle-type magnetic mesoporous Fe3O4@mSiO(2)@BiOBr hierarchical photocatalyst and investigation of its photoactivity in the degradation of methylene blue

机译:拨浪鼓型磁性介孔Fe3O4 @ mSiO(2)@BiOBr分级光催化剂的合成及其在亚甲基蓝降解中的光活性研究

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A rattle-type magnetic mesoporous Fe3O4@mSiO(2)@BiOBr hierarchical photocatalyst was successfully synthesized by a facile solvothermal method under the orientation of the surface amino-groups of rattle-type magnetic mesoporous Fe3O4@mSiO(2) microspheres. Then, this photocatalyst was characterized via Xray diffraction, transmission electron microscopy, field-emitting scanning electron microscopy, Fourier transform-infrared spectroscopy, X-ray photoelectron spectroscopy and vibrating sample magnetometry. Due to the presence of an inner cavity and orderly mesoporous opening structure, this novel photocatalyst exhibits superior adsorption and transfer performance to organic contaminants in aqueous systems. In particular, the complex between BiOBr and SiO2 had significantly increased absorption ability to visible-light due to the some extent of the direct contact of the interfaces of the two materials. Studies show that the assembly capacity of BiOBr nanosheets plays an important role in enhancing the photoactivity. Even though methylene blue is a relatively stable organic contaminant, it can still be decomposed completely by this novel photocatalyst in a very short amount of time (about 120 min). Encouragingly, the photoactivity of this novel photocatalyst is far higher (about 2.6 times) than that of pure BiOBr photocatalyst for its unique structure. According to the radical trapping experiments, the photogenerated holes (h(+)) and superoxide radicals (O-2(center dot-)) are considered to be the main active species that drive the photodegradation under visible-light irradiation. Due to the unique structures and fast interfacial charge transfer, this novel photocatalyst is absolutely a superior alternative visible-light-driven photocatalyst.
机译:嘎嘎型磁性介孔Fe3O4 @ mSiO(2)微球表面氨基的取向下,通过轻溶剂热法成功合成了嘎嘎型磁性介孔Fe3O4 @ mSiO(2)@BiOBr分层光催化剂。然后,通过X射线衍射,透射电子显微镜,场发射扫描电子显微镜,傅立叶变换红外光谱法,X射线光电子能谱和振动样品磁力法对这种光催化剂进行表征。由于存在内腔和有序的中孔开口结构,这种新型光催化剂对水性体系中的有机污染物表现出优异的吸附和转移性能。特别地,由于两种材料的界面直接接触的程度,BiOBr和SiO2之间的络合物显着提高了对可见光的吸收能力。研究表明,BiOBr纳米片的组装能力在增强光活性方面起着重要作用。即使亚甲基蓝是一种相对稳定的有机污染物,它仍然可以在很短的时间内(约120分钟)被这种新型的光催化剂完全分解。令人鼓舞的是,这种新型光催化剂的独特结构使其光活性远高于纯BiOBr光催化剂(约2.6倍)。根据自由基捕获实验,光生空穴(h(+))和超氧化物自由基(O-2(中心点-))被认为是驱动可见光照射下光降解的主要活性物质。由于其独特的结构和快速的界面电荷转移,这种新型的光催化剂绝对是可见光驱动型光催化剂的绝佳替代品。

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