School of Water Resources & Environmental Engineering, East China University of Technology, Nanchang, 330013, China.
School of Resources and Environmental Science, Wuhan University, Wuhan, 430079, China.
Environ Sci Pollut Res Int. 2022 Jul;29(32):48522-48538. doi: 10.1007/s11356-022-19269-w. Epub 2022 Feb 22.
In this present study, a novel indirect Z-scheme TiO@g-CN@biochar (TiO@g-CN@BC) composite photocatalyst was successfully fabricated and characterized with SEM, TEM, EDS, XRD, FTIR, PL, XPS, and UV-vis DRS. The photocatalytic degradation behavior of ciprofloxacin (CIP) on the TiO@g-CN@BC was evaluated under UV-vis and visible light irradiation, and the possible reaction mechanism of photocatalytic oxidation of CIP on the TiO@g-CN@BC was explained. The TiO@g-CN@BC composite photocatalyst exhibited stronger photocatalytic oxidation activity for CIP in comparison with TiO, g-CN, TiO@BC, and TiO@g-CN. After 60 min of UV-vis and visible light irradiation, the photocatalytic removal efficiency of CIP by TiO@g-CN@BC was 99.3 and 89.2%, respectively. The photocatalytic removal performance of CIP was affected by the initial concentration of CIP, catalyst dosage, and pH value. The composite photocatalyst presented excellent stability and reusability after five cycles. An indirect Z-scheme principle of the CIP photocatalytic oxidation reaction on TiO@g-CN@BC was clearly proposed, and the whole process of photocatalytic degradation was the results of the interaction between CIP and reactive active species (·O, h, and ·OH), of which ·O is the main active substance. Four CIP degradation pathways were proposed. This work may provide an effective strategy to remove antibiotics in wastewater.
在本研究中,成功制备了一种新型的间接 Z 型 TiO@g-CN@生物炭(TiO@g-CN@BC)复合光催化剂,并通过 SEM、TEM、EDS、XRD、FTIR、PL、XPS 和 UV-vis DRS 进行了表征。在 UV-vis 和可见光照射下评价了 TiO@g-CN@BC 对环丙沙星(CIP)的光催化降解行为,并解释了 CIP 在 TiO@g-CN@BC 上光催化氧化的可能反应机制。与 TiO、g-CN、TiO@BC 和 TiO@g-CN 相比,TiO@g-CN@BC 复合光催化剂对 CIP 具有更强的光催化氧化活性。在 60 min 的 UV-vis 和可见光照射下,TiO@g-CN@BC 对 CIP 的光催化去除效率分别为 99.3%和 89.2%。CIP 的光催化去除性能受 CIP 的初始浓度、催化剂用量和 pH 值的影响。经过五次循环后,复合光催化剂表现出良好的稳定性和可重复使用性。提出了 CIP 在 TiO@g-CN@BC 上光催化氧化反应的间接 Z 型原理,光催化降解的整个过程是 CIP 和活性物质(·O、h 和·OH)之间相互作用的结果,其中·O 是主要的活性物质。提出了四种 CIP 降解途径。这项工作可能为去除废水中的抗生素提供了一种有效的策略。