School of Chemistry and Chemical Engineering, South China University of Technology, 381 Wushan Road, Tianhe District, Guangzhou, 510641, China.
Shenzhen Engineering Laboratory of Phosphorene and Optoelectronics, International Collaborative Laboratory of 2D Materials, for Optoelectronic Science and Technology, Shenzhen University, Shenzhen, 518060, China.
Chemistry. 2018 Jun 7;24(32):8133-8140. doi: 10.1002/chem.201706176. Epub 2018 May 11.
Amphiphilic surfactants are widely used as templates to synthesize hierarchically structured zeolites due to their multiple functions; however, piloting such new dual-functional templates is limited by their time-consuming nature and high cost. Herein, a simple organic molecule, without a long hydrophobic alkyl chain, was tailored from a gemini-type, poly-quaternary ammonium surfactant, and effectively used as a dual-porogenic template to synthesize hierarchical MTW zeolite. Upon a range of synthesis parameter optimizations, our detailed characterization suggested that the hierarchical MTW zeolite would completely crystallize within 36 hours from the surface to the inside of quasi-spherical particles through in situ consumption of amorphous silicon and aluminum species; much faster than most of the hierarchical MTW zeolites generated by conventional methods. Moreover, the as-prepared hierarchical MTW zeolite exhibited 4 times higher catalytic performance and lifetime of benzene-propene alkylation compared to conventional MTW zeolite, while the introduced crystalline mesopores are of benefit to diffuse reactants, products, and coke depositions. Our strategy broadens the design of new templates in more effective ways to facilely synthesize versatile hierarchical zeolites for diverse applications, especially for those in which macromolecules are involved.
两亲性表面活性剂由于其多种功能而被广泛用作合成分级结构沸石的模板;然而,由于其耗时和高成本,试用这种新型双功能模板受到限制。在此,我们从双子型聚季铵盐表面活性剂中裁剪出一种简单的有机分子,它没有长的疏水烷基链,并有效地用作双孔结构模板来合成分级 MTW 沸石。通过一系列合成参数的优化,我们详细的表征表明,通过原位消耗无定形硅和铝物种,分级 MTW 沸石可以在 36 小时内从准球形颗粒的表面完全向内结晶;这比大多数通过传统方法生成的分级 MTW 沸石都要快得多。此外,与传统的 MTW 沸石相比,所制备的分级 MTW 沸石在苯-丙烯烷基化反应中的催化性能和寿命提高了 4 倍,而引入的结晶介孔有利于扩散反应物、产物和积碳。我们的策略以更有效的方式拓宽了新型模板的设计,以方便地合成用于各种应用的多功能分级沸石,特别是对于那些涉及大分子的应用。