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利用三元 C 点/CuO/SrTiO3 进行广泛的太阳能利用:抗生素的光催化降解和大肠杆菌的灭活得到高度增强。

Extensive solar light utilizing by ternary C-dots/CuO/SrTiO: Highly enhanced photocatalytic degradation of antibiotics and inactivation of E. coli.

机构信息

School of Energy Science and Engineering, Harbin Institute of Technology, Harbin, 150001, China.

Micro/Nanotechnology Research Centre, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, 150001, China.

出版信息

Chemosphere. 2022 Mar;290:133340. doi: 10.1016/j.chemosphere.2021.133340. Epub 2021 Dec 16.

Abstract

Fabrication of a visible-light driven photocatalyst is of great vital for the elimination of antibiotics and microorganism in the wastewater and the construction of sustainable green energy systems. In this work, carbon quantum dots (C-dots) were integrated with CuO/SrTiO p-n heterojunction to optimize the photocatalytic activity. The excellent photocatalytic degradation efficiency of chlortetracycline hydrochloride (CTC·HCl) (92.6% within 90 min) and E. coli inactivation efficiency were observed over C-dots/CuO/SrTiO under visible light irradiation. It is the synergistic effect of p-n heterojunction and modification of C-dots that facilitates the separation and transfer of electron-holes. Meanwhile, the modification of C-dots improves the harvesting of long wavelength solar light of photocatalysts due to its unique up-conversion photoluminescence (UCPL) characteristics. Eventually, the possible photocatalytic degradation path of the catalyst was inferred by LC-MS spectra, and the degradation mechanism was analyzed. This study sheds light on new possibilities for the application of photocatalysts in various light sources and has broad application prospects in water treatment.

摘要

可见光驱动光催化剂的制备对于消除废水中的抗生素和微生物以及构建可持续的绿色能源系统具有重要意义。在这项工作中,将碳量子点 (C-dots) 与 CuO/SrTiO p-n 异质结结合,以优化光催化活性。在可见光照射下,C-dots/CuO/SrTiO 表现出优异的盐酸金霉素 (CTC·HCl)(90 分钟内降解效率为 92.6%)和大肠杆菌灭活效率的光催化降解性能。这是 p-n 异质结和 C-dots 修饰的协同作用促进了电子-空穴的分离和转移。同时,由于 C-dots 具有独特的上转换光致发光 (UCPL) 特性,因此可以提高光催化剂对长波长太阳光的捕获。最终,通过 LC-MS 谱推断出催化剂可能的光催化降解途径,并对降解机制进行了分析。本研究为光催化剂在各种光源中的应用提供了新的可能性,在水处理领域具有广阔的应用前景。

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