Heilongjiang Provincial Key Laboratory of Environmental Nanotechnology, School of Chemistry and Materials Science, Heilongjiang University, Harbin 150080, PR China.
Heilongjiang Provincial Key Laboratory of Environmental Nanotechnology, School of Chemistry and Materials Science, Heilongjiang University, Harbin 150080, PR China.
Chemosphere. 2024 Sep;364:143255. doi: 10.1016/j.chemosphere.2024.143255. Epub 2024 Sep 2.
The TiC quantum dots (QDs)/oxygen-vacancy-rich BiOBr hollow microspheres composite photocatalyst was prepared using solvothermal synthesis and electrostatic self-assembly techniques. Together, TiCQDs and oxygen vacancies (OVs) enhanced photocatalytic activity by broadening light absorption and improving charge transfer and separation processes, resulting in a significant performance boost. Meanwhile, the photocatalytic efficiency of TiC QDs/BiOBr-OVs is assessed to investigate its capability for oxygen evolution and degradation of tetracycline (TC) and Rhodamine B (RhB) under visible-light conditions. The rate of oxygen production is observed to be 5.1 times higher than that of pure BiOBr-OVs, while the photocatalytic degradation rates for TC and RhB is up to 97.27% and 99.8%, respectively. The synergistic effect between TiCQDs and OVs greatly enhances charge separation, leading to remarkable photocatalytic activity. Furthermore, the hollow microsphere contributes to the enhanced photocatalytic performance by facilitating multiple light scatterings and providing ample surface-active sites. The resultant TiCQDs/BiOBr-OVs composite photocatalyst demonstrates significant potential for environmental applications.
采用溶剂热合成和静电自组装技术制备了 TiC 量子点(QD)/富氧空位 BiOBr 空心微球复合材料光催化剂。TiCQDs 和氧空位(OVs)共同通过拓宽光吸收和提高电荷转移和分离过程来提高光催化活性,从而显著提高性能。同时,评估了 TiC QDs/BiOBr-OVs 的光催化效率,以研究其在可见光条件下产氧和降解四环素(TC)和 Rhodamine B(RhB)的能力。观察到氧气的产率比纯 BiOBr-OVs 高 5.1 倍,而 TC 和 RhB 的光催化降解率分别高达 97.27%和 99.8%。TiCQDs 和 OVs 之间的协同效应大大增强了电荷分离,从而表现出显著的光催化活性。此外,空心微球通过促进多次光散射和提供充足的表面活性位点来提高光催化性能。所得的 TiCQDs/BiOBr-OVs 复合材料光催化剂在环境应用方面具有很大的潜力。