Wang Hao, Lu Shuangchun, Liu Qingling, Han Rui, Lu Xuebin, Song Chunfeng, Ji Na, Ma Degang
Tianjin Key Lab of Indoor Air Environmental Quality Control, School of Environmental Science and Technology, Tianjin University, Tianjin, 300350, P.R. China.
State Key Laboratory of Engines, Tianjin University, Tianjin, 300350, P.R. China.
ChemSusChem. 2022 Aug 19;15(16):e202200702. doi: 10.1002/cssc.202200702. Epub 2022 Jul 1.
Constructing metal-organic frameworks (MOFs) with high volatile organic compounds (VOCs) adsorption capacity and excellent water resistance remain challenging. Herein, a monocarboxylic acid-assisted mixed ligands strategy was designed to synthesize a novel fluorinated MOFs, MIL-53 (Al). The monocarboxylic acid promoted crystallization and produced abundant crystal defects, which increased pore volume. Moreover, the competitive coordination between tetrafluoroterephthalic acid and 1,4-dicarboxybenzene was moderated by monocarboxylic modulators, significantly improving the hydrophobicity. The toluene uptake of the optimal sample reached 254.85 mg g under humid conditions, increased by 33.56 % of MIL-53(Al), and the Q /Q (the ratio of adsorption quality under wet to adsorption quality under dry) was 0.92, remarkably surpassing that of origin MIL-53 (0.72). The recycle experiment showed superior reusability with no performance degradation after 10 recycle under RH=50 % (relative humidity). The adsorptive kinetic and thermodynamic analysis proves that the adsorption process is controlled by surface mono-layer adsorption and pore diffusion. The fluorine group affects the internal diffusion, which weakens the transfer rate. This strategy opens a new prospect of obtaining hierarchical functional MOFs for meeting the VOCs uptake under the practical application.
构建具有高挥发性有机化合物(VOCs)吸附能力和优异耐水性的金属有机框架(MOFs)仍然具有挑战性。在此,设计了一种单羧酸辅助的混合配体策略来合成一种新型氟化MOF,即MIL-53(Al)。单羧酸促进了结晶并产生了大量晶体缺陷,从而增加了孔体积。此外,单羧酸调节剂调节了四氟对苯二甲酸和对苯二甲酸之间的竞争配位,显著提高了疏水性。在潮湿条件下,最佳样品的甲苯吸附量达到254.85 mg g,比MIL-53(Al)提高了33.56 %,且Q /Q(湿态吸附质量与干态吸附质量之比)为0.92,明显超过原始MIL-53(0.72)。循环实验表明,在RH=50 %(相对湿度)下进行10次循环后,该材料具有优异的可重复使用性且性能无下降。吸附动力学和热力学分析证明,吸附过程受表面单层吸附和孔扩散控制。氟基团影响内部扩散,从而降低了传输速率。该策略为获得用于满足实际应用中VOCs吸附的分级功能MOFs开辟了新前景。