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用于在可见光照射下通过集成吸附和光催化降解增强去除多种抗生素的Ag@ZIF-8/g-CN Z型光催化剂。

Ag@ZIF-8/g-CN Z-scheme photocatalyst for the enhanced removal of multiple classes of antibiotics by integrated adsorption and photocatalytic degradation under visible light irradiation.

作者信息

Guo Xin, He Siyuan, Meng Zhe, Wang Yinghui, Peng Yuan

机构信息

State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, National Demonstration Center for Experimental Chemistry Education, College of Chemistry and Chemical Engineering, Ningxia University Yinchuan 750021 China

出版信息

RSC Adv. 2022 Jun 16;12(28):17919-17931. doi: 10.1039/d2ra02194c. eCollection 2022 Jun 14.

Abstract

By combining the plasmon resonance of Ag nanoparticles and orientation effects of ZIF-8, as well as the visible-light activity of g-CN, we constructed a direct Z-scheme heterojunction with a co-existing Ag/Ag system by an coprecipitation method. The presence of Ag/Ag on the surface of ZIF-8 was confirmed by the exchange of Ag and Zn ions. This promoted the reduction of the band gap of ZIF-8, according to X-ray diffraction (XRD) and X-ray photoelectron spectroscopy. The results reveal that the 12 wt% Ag@ZIF-8/g-CN nanocomposite presented the best adsorptive-photocatalytic activity for the degradation of multi-residue antibiotics under visible light irradiation for 60 min. Its degradation efficiency reached 90%, and its average apparent reaction rate constant was 10.27 times that of pure g-CN. In the radical scavenger experiments, ˙O and ˙OH were shown to be important in the process of photocatalytic degradation. In addition, we proposed a possible direct Z-scheme photocatalytic mechanism, that is, an internal electric field was formed to compensate the mediators between the interfaces of Ag@ZIF-8 and g-CN. This improvement can be attributed to the direct Z-scheme heterojunction system fabricated between Ag@ZIF-8 and g-CN. This can accelerate photogenerated electron-hole separation and the redox capability of Ag@ZIF-8/g-CN. The integration of the adsorption and photocatalytic degradation of various antibiotics is a promising approach. ZIF-8 has been widely used in the integrated adsorptive-photocatalytic removal of various antibiotics due to its large surface area, high orientation adsorption capacity. Therefore, this study provides new insights into the design of enhanced redox capacity for the efficient degradation of multiple antibiotics under visible-light irradiation.

摘要

通过结合银纳米颗粒的等离子体共振、ZIF-8的取向效应以及g-CN的可见光活性,我们采用共沉淀法构建了一种具有共存Ag/Ag体系的直接Z型异质结。通过Ag和Zn离子的交换证实了ZIF-8表面存在Ag/Ag。根据X射线衍射(XRD)和X射线光电子能谱,这促进了ZIF-8带隙的减小。结果表明,12 wt%的Ag@ZIF-8/g-CN纳米复合材料在可见光照射60分钟下对多残留抗生素的降解表现出最佳的吸附-光催化活性。其降解效率达到90%,平均表观反应速率常数是纯g-CN的10.27倍。在自由基清除实验中,˙O和˙OH在光催化降解过程中被证明是重要的。此外,我们提出了一种可能的直接Z型光催化机制,即形成内电场以补偿Ag@ZIF-8和g-CN界面之间的介质。这种改进可归因于在Ag@ZIF-8和g-CN之间构建的直接Z型异质结体系。这可以加速光生电子-空穴的分离以及Ag@ZIF-8/g-CN的氧化还原能力。各种抗生素的吸附与光催化降解的整合是一种很有前景的方法。由于其大表面积、高取向吸附能力,ZIF-8已被广泛用于各种抗生素的吸附-光催化集成去除。因此,本研究为设计增强氧化还原能力以在可见光照射下高效降解多种抗生素提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac88/9202599/5df6ac943872/d2ra02194c-s1.jpg

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