Guo Yuliang, Tai Wenshu, Zhao Mingyu, Chen Xiao, Chai Yuchao, Wu Guangjun, Li Landong
Frontiers Science Center for New Organic Matter, College of Chemistry, Nankai University, Tianjin 300071, China.
School of Materials Science and Engineering, Nankai University, Tianjin 300350, China.
Nanoscale. 2024 Nov 28;16(46):21594-21603. doi: 10.1039/d4nr03824j.
Self-pillared pentasil (SPP) zeolites have received considerable interest due to their distinctive intergrowth structure, while the precise process and mechanism for the formation of SPP zeolites remain obscure. Herein, SPP zeolites (ZSM-5) have been successfully synthesized by pre-aging an Al-rich gel without employing any organic templates or seeds for the first time. The as-synthesized SPP zeolites possess a notably high external surface area while the micropores for Ar adsorption are partially blocked by excess Na, which can be fully recovered by Mg or H exchange. The crystallization process is monitored and the impacts of synthesis parameters are investigated. The results show that self-pillaring originates from the partial lattice distortion at the intersections of nanosheets, offering a new insight into the self-pillaring process. Typically, with decreasing SiO/AlO ratio, more crossovers could be observed in the crystals, hinting that self-pillaring predominately occurs at the (101) plane of twins in the ZSM-5 precursor due to Al-rich lattice distortion. Finally, in the catalytic cracking of -heptane, H-SPP zeolites exhibit superior performance to commercial H-ZSM-5 zeolites due to their abundant Brønsted acid sites arising from a low framework SiO/AlO ratio of ∼21 and the short diffusion path originating from the house-of-cards structure.
自支撑五元环(SPP)沸石因其独特的共生结构而备受关注,然而,SPP沸石形成的确切过程和机制仍不清楚。在此,首次通过对富铝凝胶进行预老化,在不使用任何有机模板或晶种的情况下成功合成了SPP沸石(ZSM-5)。合成的SPP沸石具有显著较高的外比表面积,而用于氩吸附的微孔部分被过量的钠堵塞,通过镁或氢交换可以完全恢复。监测了结晶过程并研究了合成参数的影响。结果表明,自支撑源于纳米片交叉处的部分晶格畸变,为自支撑过程提供了新的见解。通常,随着SiO/AlO比的降低,在晶体中可以观察到更多的交叉,这表明由于富铝晶格畸变,自支撑主要发生在ZSM-5前驱体孪晶的(101)面上。最后,在庚烷催化裂化中,H-SPP沸石表现出优于商业H-ZSM-5沸石的性能,这是由于其约21的低骨架SiO/AlO比产生的丰富布朗斯特酸位点以及源于纸牌屋结构的短扩散路径。