Advanced Institute of Natural Sciences, Beijing Normal University at Zhuhai, Zhuhai 519087, PR China; Sichuan Provincial Sci-Tech Cooperation Base of Low-cost Wastewater Treatment Technology, Department of Environmental Engineering, Southwest University of Science and Technology, Mianyang 621010, PR China.
Sichuan Provincial Sci-Tech Cooperation Base of Low-cost Wastewater Treatment Technology, Department of Environmental Engineering, Southwest University of Science and Technology, Mianyang 621010, PR China.
Sci Total Environ. 2023 Feb 10;859(Pt 2):160334. doi: 10.1016/j.scitotenv.2022.160334. Epub 2022 Nov 19.
The design of high-performance porous adsorbents for phosphorus removal is a persistently hot topic to maintain a sustainable aquatic ecosystem. In the present study, a self-templating strategy using LaFe cyanometallates (CMs) as precursors was adopted to prepare porous LaFe bimetal oxides with optimizable structure and composition for phosphate adsorption. The results showed that a high supplied La/Fe ratio enabled an adequate coordination polymerization in the preparation of LaFe CM precursor and led to a striking three-dimensional (3D) structure of "twin lotus flower" with high coordinated water content, which resulted in a 3D flower-like LaFe oxide with high surface area and high porosity (mainly in mesopore). The LaFe oxide of LaFe15T possessing the optimal La/Fe ratio (1.5: 1) exhibited the most superior performance of phosphate adsorption, where La was confirmed to be the main active site for phosphate capture via ligand exchange mechanism. The batch and column tests of phosphate adsorption showed that the 3D flower-like LaFe oxides are effective adsorbents for phosphate removal. Therefore, the structure optimization in the template preparation stage is an effective strategy to design porous LaFe bimetal oxides as high-performance phosphorus removal materials.
设计用于去除磷的高性能多孔吸附剂是维持可持续水生态系统的一个热点话题。在本研究中,采用了自模板策略,使用镧铁氰化物(CMs)作为前体来制备具有可优化结构和组成的多孔镧铁双金属氧化物,用于磷酸盐吸附。结果表明,高供应的 La/Fe 比可在 LaFe CM 前体的制备中实现充分的配位聚合,并导致具有高配位水含量的“双莲”的惊人的三维(3D)结构,从而产生具有高表面积和高孔隙率(主要是中孔)的 3D 花状 LaFe 氧化物。具有最佳 La/Fe 比(1.5:1)的 LaFe15T 的 LaFe 氧化物表现出最优越的磷酸盐吸附性能,其中通过配体交换机制证实 La 是磷酸盐捕获的主要活性位点。磷酸盐吸附的批量和柱试验表明,3D 花状 LaFe 氧化物是去除磷酸盐的有效吸附剂。因此,在模板制备阶段进行结构优化是设计高性能磷去除材料的多孔镧铁双金属氧化物的有效策略。