College of Pharmacy, Dali University, Dali 671000, Yunnan, China.
College of Biochemistry and Environmental Engineering, Baoding University, Baoding 071000 China; College of Science and Technology, Hebei Agricultural University, Cangzhou 061100 China.
Ultrason Sonochem. 2023 Mar;94:106325. doi: 10.1016/j.ultsonch.2023.106325. Epub 2023 Feb 11.
In this work, different mass percent ratios of CoFeO coupled g-CN (w%-CoFeO/g-CN, CFO/CN) nanocomposites were integrated through a hydrothermal process for the sonocatalytic eradication of tetracycline hydrochloride (TCH) from aqueous media. The prepared sonocatalysts were subjected to various techniques to investigate their morphology, crystallinity, ultrasound wave capturing activity and charge conductivity. From the investigated activity of the composite materials, it has been registered that the best sonocatalytic degradation efficiency of 26.71 % in 10 min was delivered when the amount of CoFeO was 25% in the nanocomposite. The delivered efficiency was higher than that of bare CoFeO and g-CN. This enriched sonocatalytic efficiency was credited to the accelerated charge transfer and separation of e-h pair through the S-scheme heterojunctional interface. The trapping experiments confirmed that all the three species i.e. OH, h and O were involved in the eradication of antibiotics. A strong interaction was shown up between CoFeO and g-CN in the FTIR study to support charge transfer as confirmed from the photoluminescence and photocurrent analysis of the samples. This work will provide an easy approach for fabricating highly efficient low-cost magnetic sonocatalysts for the eradication of hazardous materials present in our environment.
在这项工作中,通过水热法将不同质量百分比的 CoFeO 耦合 g-CN(w%-CoFeO/g-CN,CFO/CN)纳米复合材料集成在一起,用于声催化从水介质中消除盐酸四环素(TCH)。所制备的声催化剂经过各种技术处理,以研究其形态、结晶度、超声波捕获活性和电荷传导性。从复合材料的活性研究中发现,当纳米复合材料中 CoFeO 的量为 25%时,其最佳的超声催化降解效率为 10 分钟内 26.71%。所提供的效率高于纯 CoFeO 和 g-CN。这种丰富的超声催化效率归功于通过 S 型异质结界面加速电子-空穴对的电荷转移和分离。捕获实验证实,三种物质即 OH、h 和 O 都参与了抗生素的消除。在 FTIR 研究中,CoFeO 和 g-CN 之间表现出很强的相互作用,以支持电荷转移,这从样品的光致发光和光电流分析中得到证实。这项工作将为制备高效、低成本的磁性声催化剂提供一种简便的方法,用于消除我们环境中存在的有害物质。