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BiFeO 的制备及 UV 非均相类芬顿体系中四环素污染物的光降解。

Preparation of BiFeO and photodegradation of tetracycline pollutant in the UV-heterogeneous Fenton-like system.

机构信息

Jiangsu Provincial Academy of Environmental Science Co., Ltd, Nanjing, 210036, People's Republic of China.

School of Engineering, China Pharmaceutical University, No.639, Longmian Road, Nanjing, 211198, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2022 Aug;29(38):57656-57668. doi: 10.1007/s11356-022-19806-7. Epub 2022 Mar 30.

Abstract

Surplus tetracycline in the water body causes damage to the ecology balance and human health. Therefore, this work established an efficient strategy, namely, the BFO-based UV-heterogeneous Fenton-like system, to eliminate TC pollution. The photocatalytic oxidation system has been integrated with the heterogeneous Fenton-like system, cooperated with the photolysis of HO. These synergistic effects could boost the generation of reactive species for the TC degradation and mineralization, due to the reduction of Fe(III) to Fe(II) by photogenerated electrons and the separation of photogenerated electron-hole pairs. The prepared BFO was stable with no secondary pollution, and could be recovered by an extra magnet to reuse. Compared with other single oxidation systems, this coupled system showed an outstanding performance in TC disposal, and TC and TOC removal efficiencies could reach 100% and 74.92%, respectively. Moreover, the mechanisms for TC degradation involved that TC was degraded by oxidation species, such as superoxide radicals, hydroxyl radicals, and positive holes, and intermediate products in the TC degradation process mainly were products at m/z = 459, m/z = 445, and m/z = 134. The promising TC disposal efficiency achieved by the integration between BFO-based photocatalytic and heterogeneous Fenton-like system sheds light on applying BFO to control water pollution.

摘要

水体中超标四环素会破坏生态平衡并危害人类健康。因此,本工作建立了一种高效的策略,即基于 BFO 的 UV 非均相类 Fenton 体系,以消除 TC 污染。该光催化氧化体系与非均相类 Fenton 体系相结合,协同 HO 的光解。这些协同作用可以通过光生电子将 Fe(III)还原为 Fe(II),以及光生电子空穴对的分离,促进活性物质的生成,从而提高 TC 的降解和矿化效率。所制备的 BFO 稳定且无二次污染,可通过外加磁场回收再利用。与其他单一氧化体系相比,该耦合体系在 TC 处理方面表现出优异的性能,TC 和 TOC 的去除效率分别可达 100%和 74.92%。此外,TC 降解的机制涉及氧化物质(如超氧自由基、羟基自由基和正孔)对 TC 的氧化降解,以及 TC 降解过程中的中间产物主要为 m/z=459、m/z=445 和 m/z=134 的产物。BFO 基光催化和非均相类 Fenton 体系的集成实现了令人满意的 TC 去除效率,为应用 BFO 控制水污染提供了思路。

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