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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >The interplay of sulfur doping and surface hydroxyl in band gap engineering: Mesoporous sulfur-doped TiO2 coupled with magnetite as a recyclable, efficient, visible light active photocatalyst for water purification
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The interplay of sulfur doping and surface hydroxyl in band gap engineering: Mesoporous sulfur-doped TiO2 coupled with magnetite as a recyclable, efficient, visible light active photocatalyst for water purification

机译:带隙工程中硫掺杂和表面羟基的相互作用:中孔硫掺杂TiO2与磁铁矿相结合,作为可回收,高效,可见光活性光催化剂用于水净化

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摘要

Photocatalysis based on TiO2 offers a sustainable pathway to drive chemical reactions, such as water splitting and contaminants decomposition, while band gap engineering of TiO2 is necessary to achieve a visible light response. Herein, we prepare sulfur doped TiO2 (TiO2-S) photocatalyst by using titanium sulfate as a dual precursor for both of TiO2 and Sin a one-pot synthetic strategy. Meanwhile, pre-synthesized Fe3O4 nanoparticles are coupled onto TiO2-S via a hydrothermal method. The resulting Fe3O4/TiO2-S composites with plenty of surface hydroxyl groups act as an efficient photocatalyst for decomposition of Rhodamine B and formaldehyde solution under visible light and solar light irradiation. On the basis of density functional theory (DFT) calculations and experimental observations, we suggest that the electronic interaction induced synergetic effect of doped sulfur and surface hydroxides can not only significantly narrow the band gap (individual surface hydroxyls or S-doping has no such a great effect), but also enhances the surface hydrophility of TiO2, ultimately making itself a robust visible light photocatalyst for organic pollutants decomposition. Thus, this dual nonmetal modification strategy is proved to exert an enormous function on band gap engineering of semiconductor photocatalyst. In addition, Fe3O4/TiO2-S photocatalyst is superparamagnetic and possesses excellent magnetic responsivity and redispersibility, which is advantageous to their photocatalytic applications. (C) 2017 Elsevier B.V. All rights reserved.
机译:基于TiO2的光催化提供可持续的途径来推动化学反应,例如水分裂和污染物分解,而TiO2的带隙工程是实现可见光响应所必需的。在此,通过使用硫酸钛作为TiO2和SiN的双前体制备硫掺杂TiO 2(TiO 2-S)光催化剂,为TiO2和SiN是一锅合成策略。同时,预合成的Fe3O4纳米颗粒通过水热法偶联到TiO 2-S上。具有大量表面羟基的所得Fe3O4 / TiO2-S复合材料用作可见光和太阳光照射下罗丹明B和甲醛溶液的高效光催化剂。在密度函数理论(DFT)计算和实验观察的基础上,我们建议电子相互作用诱导的掺杂硫和表面氢氧化物的协同作用不仅可以显着缩小带隙(个体表面羟基或S型掺杂没有这样一个效果很大,但也提高了TiO2的表面融化性,最终使自己成为有机污染物分解的稳健的可见光光催化剂。因此,证明该双重非金属修改策略在半导体光催化剂的带隙工程上发挥巨大功能。此外,Fe3O4 / TiO2-S光催化剂是超顺磁性的,具有优异的磁敏度和重新分散性,其对其光催化应用是有利的。 (c)2017 Elsevier B.v.保留所有权利。

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