Zhou Juan, Zhang Yang, Ding Jie, Fang Jiajun, Yang Jinming, Xie Yushi, Xu Xiaoling
Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Chemistry, Southwest Jiaotong University, Chengdu, Sichuan 610031, P R China.
Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, Sichuan 610031, P R China.
ACS Appl Mater Interfaces. 2024 Jan 17;16(2):2365-2377. doi: 10.1021/acsami.3c16135. Epub 2024 Jan 3.
The application of semiconductor photocatalysts in wastewater treatment always has a drawback, which is the lack of selectivity for pollutants, but molecular imprinting technology (MIT) is a remarkable method for preparing highly selective adsorbents for low concentration target pollutants. Up to now, the research of molecular imprinting materials has mainly focused on organic polymers, and there has been little research on inorganic molecular imprinting materials. In the present work, we introduced carbon quantum dots (CQDs) into the flower-like hierarchical ZnO to prepare photocatalysts CQDs/ZnO. Further, with ciprofloxacin (CIP) as the template molecule, a molecular imprinting material MIP-CQDs/ZnO was prepared by introducing both oxygen vacancies and imprinted cavities into CQDs/ZnO by the hydrothermal calcination method. It can not only increase the concentration of oxygen vacancies and broaden the light absorption range of zinc oxide without changing the crystal form of ZnO but also make it have the characteristics of preferential adsorption and degradation of CIP during the degradation process. Under the synergistic effect of CQDs, oxygen vacancies, and molecularly imprinted cavities, the molecularly imprinted material exhibits excellent photocatalytic and selective adsorption performance.
半导体光催化剂在废水处理中的应用一直存在一个缺点,即对污染物缺乏选择性,而分子印迹技术(MIT)是一种制备针对低浓度目标污染物的高选择性吸附剂的显著方法。到目前为止,分子印迹材料的研究主要集中在有机聚合物上,对无机分子印迹材料的研究很少。在本工作中,我们将碳量子点(CQDs)引入到花状分级结构的ZnO中制备光催化剂CQDs/ZnO。进一步地,以环丙沙星(CIP)为模板分子,通过水热煅烧法在CQDs/ZnO中引入氧空位和印迹空腔,制备了分子印迹材料MIP-CQDs/ZnO。它不仅可以增加氧空位浓度、拓宽氧化锌的光吸收范围而不改变ZnO的晶体形态,还使其在降解过程中具有优先吸附和降解CIP的特性。在CQDs、氧空位和分子印迹空腔的协同作用下,该分子印迹材料表现出优异的光催化和选择性吸附性能。