Key Laboratory of Industrial Ecology and Environmental Engineering (Ministry of Education, China), School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, PR China.
Key Laboratory of Industrial Ecology and Environmental Engineering (Ministry of Education, China), School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, PR China.
Sci Total Environ. 2023 Jun 10;876:162785. doi: 10.1016/j.scitotenv.2023.162785. Epub 2023 Mar 11.
The phosphate adsorption behavior on MgO-modified diatomite has been routinely investigated. Batch experiments tend to show that the addition of NaOH during preparation largely promoted adsorption performance, but comparative studies of MgO-modified diatomite with and without NaOH (MODH and MOD) based on morphology, composition, functional groups, isoelectric points and adsorption behavior have not been reported. We demonstrated that NaOH can etch the structure of MODH and promote the migration of phosphate to active sites, which allowed MODH to have a faster adsorption rate, superior environmental adaptability, adsorption selectivity and regeneration performance. The phosphate adsorption ability was enhanced from 96.73 (MOD) to 197.4 mg P/g (MODH) under optimum conditions. Furthermore, the partially hydrolyzed Si-OH group reacted with Mg-OH via a hydrolytic condensation reaction to form a new Si-O-Mg bond. Intraparticle diffusion, electrostatic attraction and surface complexation may be the main modes of phosphate adsorption by MOD, while the MODH surface mainly relied on the synergy of chemical precipitation and electrostatic attraction due to the abundant MgO adsorptive sites. Indeed, the present study provides a new understanding of the microscopic analysis of sample differences.
已对氧化镁改性硅藻土的磷酸盐吸附行为进行了常规研究。批量实验表明,制备过程中添加 NaOH 可显著提高吸附性能,但关于添加 NaOH(MODH)和未添加 NaOH(MOD)的氧化镁改性硅藻土的对比研究(基于形貌、组成、官能团、等电点和吸附行为)尚未报道。我们证明,NaOH 可以刻蚀 MODH 的结构并促进磷酸盐向活性位点的迁移,从而使 MODH 具有更快的吸附速率、更好的环境适应性、吸附选择性和再生性能。在最佳条件下,磷酸盐的吸附能力从 96.73(MOD)增强到 197.4mg P/g(MODH)。此外,部分水解的 Si-OH 基团通过水解缩合反应与 Mg-OH 反应,形成新的 Si-O-Mg 键。内扩散、静电吸引和表面络合可能是 MOD 吸附磷酸盐的主要方式,而 MODH 表面主要依赖于丰富的 MgO 吸附位点的化学沉淀和静电吸引协同作用。实际上,本研究为深入了解样品差异的微观分析提供了新的认识。