FeOx@FeP异质结构:表面磷酸化高效光催化去除类芬顿诺氟沙星

Yukun Zhu, Abiduweili Sikandaier, Yifei Zhang, Xiaoxia Wang, Baoyin Du, Jingfei Xue, Yuanyuan Sun, Ping Lu, Dongjiang Yang
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引用次数: 4

摘要

日常使用的抗生素残留物很难清除,对环境危害很大。在此FeOx@FeP采用简单的水热法合成了赤铁矿(α-Fe2O3),通过表面磷酸化构建了异质结构,用于高效的光Fenton降解抗生素诺氟沙星(NOR)。与裸露的α-Fe2O3相比FeOx@FeP异质结构表现出显著增强的光催化类Fenton性能,NOR在5​min由阳光驱动的照片Fenton反应。研究表明,表面磷化衍生的金属FeP覆盖层可以加速光生载流子在α-Fe2O3中的分离和迁移,有利于光Fenton反应产生•OH和O2•−反应性自由基,从而大大提高NOR的降解活性。这项研究展示了一种表面工程的替代策略,以设计新型异质结构材料,用于高效光Fenton处理含有抗生素残留和其他有机污染物的废水。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

FeOx@FeP heterostructure: Surface phosphorization toward efficient photocatalytic Fenton-like norfloxacin removal

FeOx@FeP heterostructure: Surface phosphorization toward efficient photocatalytic Fenton-like norfloxacin removal

The residues of daily-used antibiotics are difficult to be removed and very harmful to the environment. Herein, FeOx@FeP heterostructure was constructed by surface phosphorization of hematite (α-Fe2O3) synthesized via a facile hydrothermal method for efficient photo-Fenton degradation of antibiotic norfloxacin (NOR). Compared with the bare α-Fe2O3, the FeOx@FeP heterostructure exhibits much-enhanced photocatalytic Fenton-like performance, with NOR degraded by 75% within 5 ​min by sunlight-driven photo-Fenton reactions. It was suggested that the surface phosphorization-derived metallic FeP overlayer could accelerate the separation and migration of photogenerated charge carriers in α-Fe2O3, which benefits the generation of •OH and O2•− reactive radicals from photo-Fenton reaction and thus give rise to the great enhancement in NOR degradation activity. This study displays an alternative strategy of surface engineering to design novel heterostructured materials for the efficient photo-Fenton treatment of wastewater containing antibiotic residues as well as other organic pollutants.

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