Wang Guang-Bo, Leus Karen, Hendrickx Kevin, Wieme Jelle, Depauw Hannes, Liu Ying-Ya, Van Speybroeck Veronique, Van Der Voort Pascal
Department of Inorganic and Physical Chemistry, Center for Ordered Materials, Organometallics and Catalysis (COMOC), Ghent University, Krijgslaan 281 (S3), 9000 Ghent, Belgium.
Dalton Trans. 2017 Oct 24;46(41):14356-14364. doi: 10.1039/c7dt02752d.
In this work, we present the successful synthesis of a series of sulfonic acid functionalized mixed-linker metal-organic frameworks (MOFs) having the DUT-4 topology by using different ratios of 2,6-naphthalenedicarboxylic acid (H-NDC) and 4,8-disulfonaphthalene-2,6-dicarboxylic acid (H-NDC-2SOH) in one-pot reactions. The obtained materials were fully characterized and their CO adsorption properties at low and high pressures were studied and compared with those of the pristine DUT-4 material. Generally, the CO adsorption capacities range from 3.28 and 1.36 mmol g for DUT-4 to 1.54 and 0.78 mmol g for DUT-4-SOH (50) up to 1 bar at 273 K and 303 K, respectively. Computational calculations corroborated the structural changes of the material in function of the loading of sulfonic acid groups. Furthermore, due to the strong Brønsted acid character, the resulting sulfonic acid based MOF material was evaluated as a catalyst for the ring opening of styrene oxide with methanol as a nucleophile under mild conditions, showing almost full conversion (99%) after 5 hours of reaction. A hot filtration experiment demonstrated that the catalysis occurred heterogeneously and the catalyst could be recovered and reused for multiple runs without significant loss in activity and crystallinity.
在本工作中,我们展示了通过在一锅法反应中使用不同比例的2,6-萘二甲酸(H-NDC)和4,8-二磺酸萘-2,6-二羧酸(H-NDC-2SOH)成功合成了一系列具有DUT-4拓扑结构的磺酸官能化混合连接体金属有机框架(MOF)。对所得材料进行了全面表征,并研究了它们在低压和高压下的CO吸附性能,并与原始DUT-4材料的性能进行了比较。一般来说,在273 K和303 K下,分别在1 bar压力时,DUT-4的CO吸附容量范围为3.28和1.36 mmol/g,而DUT-4-SOH(50)的CO吸附容量为1.54和0.78 mmol/g。计算计算证实了材料结构随磺酸基团负载量的变化。此外,由于强布朗斯特酸性,所得的磺酸基MOF材料在温和条件下被评估为以甲醇为亲核试剂催化环氧苯乙烷开环反应的催化剂,反应5小时后显示几乎完全转化(99%)。热过滤实验表明催化反应为多相反应,催化剂可以回收并重复使用多次,而活性和结晶度没有明显损失。