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采用磁 La 掺杂 TiO2/铜铁氧体/硅藻土复合材料可见光驱动去除土霉素和大肠杆菌。

Visible-light-driven elimination of oxytetracycline and Escherichia coli using magnetic La-doped TiO/copper ferrite/diatomite composite.

机构信息

College of Environment, Liaoning University, Shenyang, 110036, People's Republic of China.

College of Chemistry, Liaoning University, Shenyang, 110036, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2019 Sep;26(26):26593-26604. doi: 10.1007/s11356-019-05873-w. Epub 2019 Jul 10.

Abstract

The development of powdery photocatalyst has long been studied, yet the low recovery in water is still its bottleneck. In this work, magnetic recyclable lanthanum-doped TiO/copper ferrite/diatomite (La-TCD) ternary composite was synthesized via sol-gel method. The physicochemical properties of various hybrid catalysts were characterized and studied, and their photocatalytic properties were evaluated via the decomposition of antibiotic oxytetracycline and disinfection of bacteria Escherichia coli under visible light. The formation of heterojunction between La-doped TiO and copper ferrite hindered the recombination of photo-induced charge carriers and improved the photocatalytic activity. The photodecomposition rate of OTC was accelerated by the high adsorption ability of diatomite, due to the adsorption and decomposition synergistic effect between catalysts and substrate diatomite. The optimal La dopant amount as well as optimal catalyst dosage was determined. The composite could simply be recovered from waterbody via an external magnet, and the repetition tests indicated no obvious decrease of photoactivity. This nanocomposite presented good potential to be applied in environmental remediation process, due to its high photocatalytic efficiency under visible light, as well as its good reusability and stability.

摘要

粉末光催化剂的开发由来已久,但在水中的回收率低仍是其瓶颈。本工作通过溶胶-凝胶法合成了磁性可回收镧掺杂 TiO/铜铁氧体/硅藻土(La-TCD)三元复合光催化剂。对各种混合催化剂的物理化学性质进行了表征和研究,并通过抗生素土霉素的分解和可见光下大肠杆菌的消毒来评价其光催化性能。La 掺杂 TiO 和铜铁氧体之间形成的异质结阻碍了光致载流子的复合,提高了光催化活性。硅藻土具有高吸附能力,加速了 OTC 的光降解,这是由于催化剂与底物硅藻土之间的吸附和分解协同作用。确定了最佳的 La 掺杂量和最佳的催化剂用量。该复合材料可通过外部磁铁从水体中简单回收,重复试验表明光活性没有明显下降。由于该纳米复合材料在可见光下具有较高的光催化效率,以及良好的可重复使用性和稳定性,因此在环境修复过程中具有很好的应用潜力。

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