College of Earth and Environmental Sciences, Lanzhou University, Lanzhou, Key Laboratory for Environmental Pollution Prediction and Control, Gansu Province, China.
College of Earth and Environmental Sciences, Lanzhou University, Lanzhou, Key Laboratory for Environmental Pollution Prediction and Control, Gansu Province, China.
J Hazard Mater. 2022 Jun 15;432:128759. doi: 10.1016/j.jhazmat.2022.128759. Epub 2022 Mar 23.
Green bismuth-based photocatalysts have attracted extensive attention in the field of PPCPs photodegradation. The improved carrier separation efficiency still remains a key factor to enhance photocatalytic performance. Herein, N-doped biomass carbon quantum dots (N-CQDs) decorated p-n heterojunction photocatalyst BiO/BiOCl was prepared using a facile ion-etching strategy, and it displayed a markedly enhanced catalytic activity in the photodegradation of sulfonamide antibiotics. Calculated by the differential charge density, the doped N-CQDs could gather photogenerated electrons, which indicated that the introduction of N-CQDs into BiO/BiOCl would effectively inhibit the recombination of photogenerated charge carriers. In addition, photocatalytic performance and density functional theory (DFT) calculation results revealed that the photogenerated electrons tended to transfer from p-BiOCl to n-BiO through N-CQDs, which could generate ·O and photogenerated h to oxidize the target pollutants. Benefiting from the synergistic effect of accelerated separation of e-h in p-n heterojunction and the electron-rich performance of N-CQDs, the superb TOC removal efficiencies (89.40% within 120 min visible-light irradiation) and toxicity reduction performance of photodegradation intermediates were achieved. As a consequence, this work will provide a design of high-quality photocatalysts and a green-promising strategy for bismuth-based photocatalysts in the water treatment of PPCPs.
基于绿色铋的光催化剂在 PPCPs 光降解领域引起了广泛关注。提高载流子分离效率仍然是增强光催化性能的关键因素。本文采用简便的离子刻蚀策略,制备了 N 掺杂生物质碳量子点(N-CQDs)修饰的 p-n 异质结光催化剂 BiO/BiOCl,在磺胺类抗生素的光降解中表现出显著增强的催化活性。通过差分电荷密度计算,掺杂的 N-CQDs 可以聚集光生电子,这表明将 N-CQDs 引入 BiO/BiOCl 中可以有效抑制光生载流子的复合。此外,光催化性能和密度泛函理论(DFT)计算结果表明,光生电子倾向于通过 N-CQDs 从 p-BiOCl 转移到 n-BiO,从而产生·O 和光生 h 来氧化目标污染物。得益于 p-n 异质结中 e-h 分离的加速和 N-CQDs 的富电子性能的协同效应,实现了 TOC 的高效去除(可见光照射 120 分钟内去除率达到 89.40%)和光降解中间产物毒性的降低。因此,这项工作将为基于铋的光催化剂在 PPCPs 水处理中提供高质量光催化剂的设计和绿色有前途的策略。