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首页> 外文期刊>Environmental Science and Pollution Research >Facile synthesis of a novel Ag3PO4/MIL-100(Fe) Z-scheme photocatalyst for enhancing tetracycline degradation under visible light
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Facile synthesis of a novel Ag3PO4/MIL-100(Fe) Z-scheme photocatalyst for enhancing tetracycline degradation under visible light

机译:基于Ag3PO4 / MIL-100(Fe)Z样品光催化剂的细胞合成,用于在可见光下提高四环素降解

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In this work, a novel visible light-driven heterostructure Ag3PO4/MIL-100(Fe) composite photocatalyst was successfully synthesized via facile chemical deposition method at room temperature. Especially when the mass ratio of Ag(3)PO(4)was 20% of MIL-100(Fe) (APM-2), it displayed the best photocatalytic performance, for which the degradation rate of tetracycline (TC) in conventional environment was 6.8 times higher than that of bare MIL-100(Fe). In addition, the effects of the initial concentration and pH of the solution on the degradation of tetracycline were also studied, and the results showed that the degradation of tetracycline was more favorable in a weakly alkaline environment. The excellent performance of Ag3PO4/MIL-100(Fe) composites was attributed to the fact that on the basis of having adequate photocatalytic active sites, modifying MIL-100(Fe) with an appropriate amount of Ag(3)PO(4)particles can more effectively separate photogenerated electron-hole pairs. Five cycles of experiments showed that APM-2 has good photostability. Lastly, it was proved through quenching experiments that center dot O-2(-), h(+), and center dot OH all played corresponding roles in the degradation process, and a possible Z-scheme heterostructure photocatalytic degradation mechanism was proposed.
机译:在这项工作中,通过在室温下通过容易化学沉积方法成功地合成了一种新的可见光出异质结构Ag3PO4 / MIL-100(Fe)复合光催化剂。特别是当Ag(3)PO(4)的质量比为20%的MIL-100(Fe)(APM-2)时,它显示出最佳的光催化性能,其中常规环境中四环素(TC)的降解率比贝尔-100(Fe)高出6.8倍。此外,还研究了初始浓度和pH对四环素降解的初始浓度和pH的影响,结果表明,四环素的降解在弱碱性环境中更有利。 Ag3PO4 / MIL-100(Fe)复合材料的优异性能归因于具有足够的光催化活性位点,以适量的Ag(3)PO(4)颗粒改性MIL-100(Fe)可以更有效地分开光发素的电子孔对。五个循环的实验表明,APM-2具有良好的光稳定性。最后,通过淬火实验证明中心点O-2( - ),H(+)和中心点OH全部在降解过程中发挥了相应的作用,提出了一种可能的Z形式异质结构光催化降解机理。

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