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负载 CoFeO 的生物炭增强了过乙酸活化体系中高价态 Fe(IV)和 Co(IV)的形成和氧空位的形成,从而增强了抗生素的降解。

Biochar loaded with CoFeO enhances the formation of high-valent Fe(IV) and Co(IV) and oxygen vacancy in the peracetic acid activation system for enhanced antibiotic degradation.

机构信息

College of Chemistry and Chemical Engineering, Qiqihar University, Qiqihar 161006, China.

College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China.

出版信息

Bioresour Technol. 2023 Nov;387:129536. doi: 10.1016/j.biortech.2023.129536. Epub 2023 Aug 5.

Abstract

Corn straw and sludge-derived biochar composite (BC) loaded with CoFeO was successfully prepared to activate peracetic acid (PAA) for efficient degradation of tetracycline hydrochloride (TCH). Within 60 s, 96 % TCH removal efficiency was achieved through a non-free radical degradation pathway, primarily driven by singlet oxygen (O). The mechanism involves the electron-rich groups on the biochar surface, which facilitate the cleavage of the PAA OO bond to generate •O/O and provide electrons to induce the formation of high-valent Fe(IV) and Co(IV). The oxygen vacancies on the surface of the CoFeO-loaded biochar composite (CFB-2) contribute partially to O production through their transformation into a metastable intermediate with dissolved oxygen. Moreover, elevated temperatures further enhance PAA activation by CFB-2, leading to increased reactive oxygen species (ROS) production through PAA decomposition, thereby promoting TCH removal. This study offers new insights into the catalysis of metal-loaded biochar for efficient TCH degradation via non-free radical generation.

摘要

玉米秸秆和污泥衍生的生物炭复合材料(BC)负载 CoFeO 成功制备,用于激活过氧乙酸(PAA)以有效降解盐酸四环素(TCH)。在 60 秒内,通过非自由基降解途径实现了 96%的 TCH 去除效率,主要由单线态氧(O)驱动。该机制涉及生物炭表面富电子基团,促进 PAA OO 键的断裂,生成•O/O,并提供电子诱导高价 Fe(IV)和 Co(IV)的形成。负载 CoFeO 的生物炭复合材料(CFB-2)表面的氧空位部分通过转化为溶解氧的亚稳中间体来产生 O。此外,升高的温度通过 CFB-2 进一步增强 PAA 的活化,通过 PAA 分解产生更多的活性氧物种(ROS),从而促进 TCH 的去除。本研究为金属负载生物炭通过非自由基生成高效降解 TCH 的催化作用提供了新的见解。

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