School of Life Sciences, Huzhou University, Huzhou, 313000, China; College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.
College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.
J Hazard Mater. 2018 May 15;350:144-153. doi: 10.1016/j.jhazmat.2018.02.021. Epub 2018 Feb 11.
A novel hybrid layered material-Schiff Base-Zinc Complexes intercalated ZnCr-LDHs-supported ZnO-was synthesized by one-step coprecipitation method and characterized by XRD, UV-vis DRS, SEM, TEM, BET, ICP-AES and XPS analysis. The influences of the three Zn components (intercalated between the layers, supported on the surface, distributed in the host layers of the layered material) on the crystallinity and the photocatalytic activity of ZnO/ZnCr-SalenZn-LDHs for Rhodamine B (RhB) degradation were studied in detail by orthogonal design. The results showed that the percentage of the three components has a great effect on the structure and photocatalytic performance of ZnO/ZnCr-SalenZn-LDHs. The SalenZn intercalated between the layers and the Zn distributed in the layers of the layered material were the main influencing factors, and the ZnO supported on the surface of the layered material was the secondary influencing factor. The optimum initial molar ratios were SalenZn:Cr = 0.5, Zn:Cr = 3, and ZnO:Cr = 0.75, respectively, and the photocatalytic degradation efficiency of RhB reached 96.9%. In addition, a possible mechanism of photocatalysis was discussed from the perspectives of photogenerated reactive species and photoinduced carries transfer. While, the regeneration of the best photocatalytic material was also investigated in detail.
采用一步共沉淀法合成了一种新型杂化层状材料——席夫碱-锌配合物插层 ZnCr-LDHs 负载 ZnO,并通过 XRD、UV-vis DRS、SEM、TEM、BET、ICP-AES 和 XPS 分析进行了表征。通过正交设计详细研究了三种 Zn 组分(层间插层、表面负载、分布在层状材料的主体层中)对 ZnO/ZnCr-SalenZn-LDHs 结晶度和光催化活性的影响。结果表明,三种组分的百分比对 ZnO/ZnCr-SalenZn-LDHs 的结构和光催化性能有很大影响。层间插层的 SalenZn 和分布在层状材料层中的 Zn 是主要影响因素,而层状材料表面负载的 ZnO 是次要影响因素。最佳初始摩尔比分别为 SalenZn:Cr = 0.5、Zn:Cr = 3 和 ZnO:Cr = 0.75,RhB 的光催化降解效率达到 96.9%。此外,还从光生活性物质和光诱导载流子转移的角度探讨了可能的光催化机理。同时,还详细研究了最佳光催化材料的再生情况。