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首页> 外文期刊>Chemical engineering journal >Rapid synthesis of hierarchical BiOCl microspheres for efficient photocatalytic degradation of carbamazepine under simulated solar irradiation
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Rapid synthesis of hierarchical BiOCl microspheres for efficient photocatalytic degradation of carbamazepine under simulated solar irradiation

机译:快速合成分级BiOCl微球,可在模拟太阳辐射下有效地光催化降解卡马西平

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A rapid method was developed for the synthesis of hierarchical BiOCl microspheres via a diethylene glycol (DEG) mediated solvothermal route in 30 mm solvothermal time with the assistance of ultrasound. The physicochemical properties of the obtained samples were charadterized and the results indicated that both DEG and ultrasound influenced the morphology, structure, and surface characteristics of BiOCl catalyst, which further determine their specific photocatalytic performances. The as-synthesized BiOCl exhibited high photocatalytic efficiency towards the degradation of carbamazepine under simulated solar irradiation. Carbamazepine was nearly completely eliminated after 150 mm irradiation. The photocatalytic reaction followed pseudo first-order kinetics, and the reaction rate constant is over 9.48 times greater than that of the commercial TiO2 (P25). The enhanced photocatalytic activities could be attributed to the hierarchical nanostructure, exposed {110} facet, special loose-packed structure, and enriched surface hydroxyl group. Radicals and holes trapping experiments showed that h(+), (OH)-O-center dot, and O-center dot(2)- were involved in the photocatalytic process. The obtained results will provide a new sight for the synthesis of hierarchical BiOCl and broadening its application in the removal of the recalcitrant pharmaceutical contaminants from water. (C) 2014 Elsevier B.V. All rights reserved.
机译:开发了一种快速方法,用于在超声辅助下,在30 mm溶剂热时间内通过二甘醇(DEG)介导的溶剂热途径合成分级BiOCl微球。对所得样品的理化性质进行了表征,结果表明DEG和超声均影响BiOCl催化剂的形貌,结构和表面特性,进一步决定了它们的特定光催化性能。合成后的BiOCl在模拟的太阳辐射下对卡马西平的降解表现出高的光催化效率。卡马西平在150 mm照射后几乎被完全消除。光催化反应遵循拟一级反应动力学,反应速率常数是市售TiO2(P25)的9.48倍以上。增强的光催化活性可归因于分层的纳米结构,{110}裸露面,特殊的松散结构和富集的表面羟基。自由基和空穴陷阱实验表明,h(+),(OH)-O-中心点和O-中心点(2)-参与了光催化过程。所获得的结果将为分级BiOCl的合成提供新的视野,并扩大其在从水中去除顽固性药物污染物中的应用。 (C)2014 Elsevier B.V.保留所有权利。

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