Yang Ji-Min, Liu Bo-Wen, Zhang Wei
School of Chemistry & Chemical Engineering, Linyi University, Linyi 276005, China.
Langmuir. 2024 Apr 2;40(13):6962-6970. doi: 10.1021/acs.langmuir.3c04012. Epub 2024 Mar 24.
It is critical to remove organic contaminants from wastewater released by the printing and dyeing industry for addressing water pollution issue. Therefore, the fabrication of new adsorbents with excellent removal efficiencies is an urgent task. A composite of MIL-101 partially functionalized with -SOH (MIL-101-SOH) and graphene oxide (GO) was prepared by assembling MIL-101-SOH truncated octahedrons on the GO framework. The synthesized MIL-101-SOH@GO has a superior adsorption efficiency for anionic azo dyes. The maximum adsorption capacities of MIL-101-SOH@GO-1 for Congo red, methyl orange, acid orange 7, and acid orange G reached 2711.3, 818.8, 551.2, and 319.8 mg/g, respectively, which are considerably higher than those obtained using unmodified MIL-101. This is because additional interactions that promote azo dye adsorption, such as hydrogen bonding between the dye and the sulfonic acid groups of MIL-101-SOH or the carboxyl groups of GO, were induced, and agglomerate pores that accommodated the dye were formed in the composite. The ultrahigh removal efficiency of the composite for azo dyes is mainly driven by hydrogen bonding, electrostatic interactions, π-π stacking between the MIL-101-SOH@GO and dye molecules, synergistic interactions at the interface of GO and MIL-101-SOH microcrystals, and the pore-filling effect. Understanding these driving forces for dye adsorption can contribute to the development of sustainable and functionally modified metal-organic framework composite adsorbents.
从印染行业排放的废水中去除有机污染物对于解决水污染问题至关重要。因此,制备具有优异去除效率的新型吸附剂是一项紧迫任务。通过将MIL-101-SOH截顶八面体组装在氧化石墨烯(GO)骨架上,制备了一种部分用-SOH官能化的MIL-101与氧化石墨烯(GO)的复合材料。合成的MIL-101-SOH@GO对阴离子偶氮染料具有优异的吸附效率。MIL-101-SOH@GO-1对刚果红、甲基橙、酸性橙7和酸性橙G的最大吸附容量分别达到2711.3、818.8、551.2和319.8 mg/g,这大大高于使用未改性MIL-101获得的吸附容量。这是因为诱导了促进偶氮染料吸附的额外相互作用,如染料与MIL-101-SOH的磺酸基团或GO的羧基之间的氢键,并且在复合材料中形成了容纳染料的团聚孔。该复合材料对偶氮染料的超高去除效率主要由氢键、静电相互作用、MIL-101-SOH@GO与染料分子之间的π-π堆积、GO和MIL-101-SOH微晶界面处的协同相互作用以及孔填充效应驱动。了解这些染料吸附的驱动力有助于开发可持续且功能改性的金属有机框架复合吸附剂。