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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Hollow Mesoporous SiO2-BiOBr Nanophotocatalyst: Synthesis, Characterization and Application in Photodegradation of Organic Dyes under Visible-Light Irradiation
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Hollow Mesoporous SiO2-BiOBr Nanophotocatalyst: Synthesis, Characterization and Application in Photodegradation of Organic Dyes under Visible-Light Irradiation

机译:空心介孔SiO2-BiOBr纳米光催化剂:可见光辐照下有机染料的合成,表征及在光降解中的应用

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摘要

In this paper, a novel visible-light-driven hollow mSiO2-BiOBr (H-mSiO2-BiOBr) nanophotocatalyst was successfully synthesized by a facile three-step method. First, the hollow mesoporous silica submicrospheres with orderly mesoporous opening structure and an independent internal cavity were synthesized by combining Sto?ber hydrolysis and chemical etching. Second, the hollow mesoporous silica submicrospheres were functionalized by 3-triethoxysilylpropylamine (APTES), then the amino-groups were successfully introduced into the surface of this material. Third, the BiOBr nanophotocatalyst with size of about 8-15 nm was successfully synthesized on the surface of the aforementioned amino-functionalized hollow mesoporous silica submicrospheres by solvothermal synthesis with the aid of the oriented function of the surface amino-groups. After several characterizations of the materials, the photocatalytic degradation of RhB by this HmSiO2- BiOBr nanophotocatalyst under visible-light irradiation was investigated. The experimental results revealed that the photocatalytic activity of the H-mSiO2-BiOBr nanophotocatalyst was higher than that of the core-shell SiO2@mSiO2-BiOBr nanophotocatalyst under visible-light irradiation. More importantly, the nanoscale BiOBr photocatalyst, which was synthesized by controlling the addition amounts of the bismuth source, would lead to an increased band gap (1.47 eV), and it would further lead to the effective restraint for the recombination of the photoexcited electron-hole pairs. However, the rapid migration of the interface charges would enhance the photoactivity of this novel supported nanophotocatalyst significantly. Furthermore, the existence of the internal cavities of this novel nanophotocatalyst would lead to the multiple reflections of the irradiated light and effectively prolong its action time, which is also very conducive to the enhancement of the photoactivity of this supported nanophotocatalyst. Beyond that, the orderly mesoporous opening structure and the independent internal cavities can effectively facilitate the transfer of reactant molecules. This would lead to the enhanced photocatalytic performance of this novel supported BiOBr nanophotocatalyst.
机译:本文通过一种简便的三步法成功地合成了一种新型的可见光驱动的空心mSiO2-BiOBr(H-mSiO2-BiOBr)纳米光催化剂。首先,通过斯托伯水解和化学刻蚀相结合的方法,合成了具有规则介孔开口结构和独立内部空腔的中空介孔二氧化硅亚微球。其次,中空介孔二氧化硅亚微球被3-三乙氧基甲硅烷基丙胺(APTES)功能化,然后将氨基成功地引入了这种材料的表面。第三,借助于溶剂热合成,借助于表面氨基的定向功能,成功地在上述氨基官能化的中空介孔二氧化硅亚微球的表面上成功合成了尺寸为约8-15nm的BiOBr纳米光催化剂。在对材料进行了几种表征后,研究了该HmSiO2-BiOBr纳米光催化剂在可见光照射下对RhB的光催化降解。实验结果表明,H-mSiO2-BiOBr纳米光催化剂在可见光照射下的光催化活性高于核壳SiO2 @ mSiO2-BiOBr纳米光催化剂。更重要的是,通过控制铋源的添加量合成的纳米级BiOBr光催化剂将导致带隙增加(1.47 eV),并进一步导致有效抑制光激发电子的复合。孔对。然而,界面电荷的快速迁移将显着增强这种新型负载型纳米光催化剂的光活性。此外,这种新型纳米光催化剂的内腔的存在将导致所照射的光的多次反射并有效地延长其作用时间,这也非常有利于这种负载型纳米光催化剂的光活性的增强。除此之外,有序的介孔开口结构和独立的内腔可以有效地促进反应物分子的转移。这将导致这种新型负载的BiOBr纳米光催化剂的光催化性能增强。

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