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Photocatalytic degradation of 2,4-dichlorophenol over Fe-ZnO catalyst under visible light

机译:可见光下Fe-ZnO催化剂上光催化降解2,4-二氯苯酚

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摘要

Fe-ZnO was synthesized via impregnation and applied to photocatalytic degradation of 2,4-dichlorophenol (2,4-DCP) under visible light. Conditions of Fe-ZnO synthesis which included a Fe content and a calcination temperature were focused. From UV-DRS, visible light absorption of Fe-ZnO samples increased with increasing of Fe content and calcination temperature. TEM images revealed Fe species (FeO, Fe3O4, and Fe2O3) on ZnO as a function of calcination temperature. XANES analysis confirmed the majority of Fe3+ content. Response surface methodology (RSM) dominating over experimental design and statistical analysis for 2,4-DCP photocatalytic degradation indicated that the high degradation efficiency was associated with calcination temperature of 680-700 A degrees C, Fe content of 4.5-5.0 mol%, and catalyst loading of 1.2-1.8 g L-1. Moreover, addition of 2mM of K2S2O8 in a 5.0Fe-ZnO@700 A degrees C system could enhance the degradation efficiency to a completion within 90 min. The kinetics of 2,4-DCP photocatalytic degradation well fit the Langmuir-Hinshelwood model.
机译:Fe-ZnO通过浸渍合成,并在可见光下用于光催化降解2,4-二氯苯酚(2,4-DCP)。重点研究了包括Fe含量和煅烧温度的Fe-ZnO合成条件。通过UV-DRS,Fe-ZnO样品的可见光吸收随着Fe含量和煅烧温度的增加而增加。 TEM图像显示了ZnO上的Fe种类(FeO,Fe3O4和Fe2O3)与煅烧温度的关系。 XANES分析证实了大部分的Fe3 +含量。响应表面方法(RSM)主导了2,4-DCP光催化降解的实验设计和统计分析,表明高降解效率与680-700 A摄氏度的煅烧温度,4.5-5.0 mol%的铁含量和催化剂负载量为1.2-1.8 g L-1。此外,在5.0Fe-ZnO@700 A的温度体系中添加2mM的K2S2O8可以提高降解效率,并在90分钟内完成。 2,4-DCP光催化降解的动力学非常符合Langmuir-Hinshelwood模型。

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