Bi Fukun, Wei Jiafeng, Ma Shuting, Zhao Qiangyu, Zhang Jingrui, Qiao Rong, Xu Jingcheng, Liu Baolin, Huang Yuandong, Zhang Xiaodong
School of Environment and Architecture, University of Shanghai for Science and Technology, Shanghai 200093, China; School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
School of Environment and Architecture, University of Shanghai for Science and Technology, Shanghai 200093, China.
J Colloid Interface Sci. 2024 Jul;665:898-910. doi: 10.1016/j.jcis.2024.03.192. Epub 2024 Mar 29.
The construction of metal-organic frameworks (MOFs) with highly efficient capture for volatile organic compounds (VOCs) adsorption under humid conditions is a significant yet formidable task. Herein, series of fluorinated UiO-67 modified with trifluoroacetic acid (TFA) and 4-fluorobenzoic acid were successfully synthesized for VOCs adsorption under high humidity conditions. Experiments results showed that UiO-67 modified with 4-fluorobenzoic acid (67-F) presented excellent adsorption capacity of 345 mg/g for toluene adsorption and exhibited great water resistance (10.0 vol% HO, 374 mg/g toluene adsorption capacity). Characterization results indicated that the introduction of 4-fluorobenzoic acid induced the competitive coordination between 4-fluorobenzoic acid and 4,4-biphenyl dicarboxylic acid (BPDC) with Zr, causing the formation of abundant defects to provide extra adsorption sites. Meanwhile, the benzene ring in 4-fluorobenzoic acid enhanced the π-π conjugation, causing the further promotion of VOCs adsorption capacity. More importantly, the water resistance mechanism was investigated and elucidated that the introduction of F decreased the surface energy of 67-F and its affinity with water. Meanwhile, the metal complex induced by the fluorinated modification produced an electron-dense pore environment, which greatly improved its chemical and water stability. This work provided a strategy for preparing an adsorbent with high water resistance for real-world VOCs adsorption at high humidity conditions.
构建在潮湿条件下对挥发性有机化合物(VOCs)具有高效捕获能力的金属有机框架(MOFs)是一项重大且艰巨的任务。在此,成功合成了一系列用三氟乙酸(TFA)和4-氟苯甲酸改性的氟化UiO-67,用于在高湿度条件下吸附VOCs。实验结果表明,用4-氟苯甲酸改性的UiO-67(67-F)对甲苯的吸附容量高达345 mg/g,表现出优异的吸附性能,并且具有很强的耐水性(10.0 vol% HO,甲苯吸附容量为374 mg/g)。表征结果表明,4-氟苯甲酸的引入导致4-氟苯甲酸与4,4'-联苯二甲酸(BPDC)与Zr之间发生竞争配位,从而形成大量缺陷,提供了额外的吸附位点。同时,4-氟苯甲酸中的苯环增强了π-π共轭,进一步提高了VOCs的吸附容量。更重要的是,研究并阐明了其耐水机理,即F的引入降低了67-F的表面能及其与水的亲和力。同时,氟化改性诱导产生的金属络合物形成了电子密集的孔环境,大大提高了其化学稳定性和耐水性。这项工作为制备在高湿度条件下用于实际VOCs吸附的高耐水性吸附剂提供了一种策略。