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Photodegradation of organic water pollutants under visible light using anatase F, N co-doped TiO_2/SiO_2 nanocomposite: Semi-pilot plant experiment and density functional theory calculations

机译:使用Anatase F,N共掺杂TiO_2 / SiO_2纳米复合材料可见光下有机水污染物的光降解:半导体植物实验与密度泛函理论计算

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Y Visible-light driven photocatalysts are of great importance in wastewater treatment. In this work, fluorine and nitrogen co-doped titanium dioxide/silica nanocomposite (FeNeTiO2/SiO2) was synthetized using a sol-gel approach. The as-developed nanocomposite was well characterized using different techniques. In particular, an anatase structure with high surface area (345.69 m(2)/g) and a band gap of 2.97 eV were observed for the as-synthesized nanocomposite, which makes it a potential candidate for photocatalytic applications under visible light. A systematic density functional theory calculation was performed to get more insight into the effect of dopant atoms on the band gap of TiO2 nanoparticles. To enhance the reusability of the photocatalyst in semi-pilot scale, the as-developed nanocomposite was immobilized onto the glass beads by coupling dip-coating and heat attachment methods. A semi-pilot scale custom-designed fixed-bed photoreactor was used to evaluate the photocatalytic performance of the as-developed nanocomposite under both visible and solar irradiations. A mixture of three azo dyes (i.e., basic red 29, basic blue 41 and basic yellow 51) was used as the model industrial wastewater. The analysis of the wastewater showed that the complete removal of the pollutants under visible light and sunlight can occurred at pH of 3 and flow rate of 280 mL/min. The durability results demonstrated the successful degradation of the pollutants for five cycles. The results of this study show how careful controlling the operational parameters as well as using a highly photocatalytic nanomaterial can lead to successful decontamination of organic water pollutants. This approach might open up new windows to the future applications of photocatalytic nanomaterials for wastewater treatment. (C) 2021 Elsevier Ltd. All rights reserved.
机译:Y可见光驱动的光催化剂在废水处理方面具有重要意义。在该工作中,合成使用溶胶 - 凝胶方法合成氟和氮的共掺杂二氧化钛/二氧化硅纳米复合材料(FenetiO2 / SiO 2)。使用不同的技术,优于开发的纳米复合材料很好地表征。特别地,对于具有高表面积(345.69μm(2)/ g)的锐钛矿结构和2.97eV的带隙,用于如合成的纳米复合材料,使其成为可见光下光催化应用的潜在候选者。进行了系统密度函数理论计算,以更高了解掺杂剂原子对TiO2纳米颗粒的带隙的影响。为了提高光催化剂以半导体刻度的可重用性,通过偶联浸涂和热附着方法将起始的纳米复合材料固定在玻璃珠上。使用半导体规模定制的固定床光反应器来评估在可见光和太阳照射下的纳米复合材料的光催化性能。使用三种偶氮染料(即,基本红色29,碱性蓝41和碱性黄色51)的混合物作为工业废水。废水的分析表明,在可见光下完全除去污染物和阳光下的污染物可以在380ml / min的pH值下发生。耐用性结果表明,污染物的成功降解了五个循环。该研究的结果表明,控制操作参数以及使用高度光催化纳米材料的仔细仔细仔细检查有机水污染剂的成功净化。这种方法可能会使新窗口开辟了光催化纳米材料进行废水处理的未来应用。 (c)2021 elestvier有限公司保留所有权利。

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