Hassan Alhassawi, Edidiong Asuquo, Shima Zainal, Yuxin Zhang, Abdullah Alhelali, Zhipeng Qie, Christopher M. A. Parlett, Carmine D’Agostino, Xiaolei Fan, Arthur A. Garforth
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引用次数: 0
摘要
沸石和介孔二氧化硅等骨架材料常用于多种应用领域,尤其是催化和分离领域。本文制备了沸石-介孔二氧化硅复合催化剂(采用沸石 Y、ZSM-5、KIT-6、SBA-15 和 MCM-41 介孔二氧化硅)(沸石 Y 和 ZSM-5 的重量百分比各不相同),并评估了催化裂解(以正庚烷为模型化合物,温度为 550 ℃),目的是提高乙烯和丙烯轻烯烃对正庚烷的选择性/产率。采用多种技术对母体沸石和制备的复合材料的理化性质进行了全面鉴定,包括 X 射线衍射、氮物理吸附、扫描电子显微镜、傅里叶变换红外光谱、脉冲场梯度核磁共振和热重分析。催化裂解结果表明,ZY/ZSM-5/KIT-6 复合材料(20:20:60 wt %)的正庚烷转化率高达 85%,对乙烯/丙烯的选择性约为 6%。相比之下,ZY/ZSM-5/SBA-15 复合材料的转化率更高,达到 95%,乙烯/丙烯比率为 8%,这表明该工艺在转化率和选择性方面都更有效。对 ZY/ZSM-5/KIT-6 (20:20:60)催化剂的磁共振弛豫分析证实,微多孔环境会影响正庚烷的扩散和传质。由于沸石 Y 和 ZSM-5 具有微孔,正庚烷可以移动并发生氢转移反应,而 KIT-6 具有介孔,有助于正庚烷进入沸石 Y 和 ZSM-5 的活性位点。
Formulation of zeolite-mesoporous silica composite catalysts for light olefin production from catalytic cracking
Framework materials such as zeolites and mesoporous silicas are commonly used for many applications, especially catalysis and separation. Here zeolite-mesoporous silica composite catalysts (employing zeolite Y, ZSM-5, KIT-6, SBA-15 and MCM-41 mesoporous silica) were prepared (with different weight percent of zeolite Y and ZSM-5) and assessed for catalytic cracking (using n-heptane, as the model compound at 550 °C) with the aim to improve the selectivity/yield of light olefins of ethylene and propylene from n-heptane. Physicochemical properties of the parent zeolites and the prepared composites were characterized comprehensively using several techniques including X-ray diffraction, nitrogen physisorption, scanning electron microscopy, fourier transform infrared spectroscopy, pulsed-field gradient nuclear magnetic resonance and thermogravimetric analysis. Catalytic cracking results showed that the ZY/ZSM-5/KIT-6 composite (20:20:60 wt %) achieved a high n-heptane conversion of 85% with approximately 6% selectivity to ethylene/propylene. In contrast, the ZY/ZSM-5/SBA-15 composite achieved a higher conversion of 95% and an ethylene/propylene ratio of 8%, indicating a more efficient process in terms of both conversion and selectivity. Magnetic resonance relaxation analysis of the ZY/ZSM-5/KIT-6 (20:20:60) catalyst confirmed a micro-mesoporous environment that influences n-heptane diffusion and mass transfer. As zeolite Y and ZSM-5 have micropores, n-heptane can move and undergo hydrogen transfer reactions, whereas KIT-6 has mesopores that facilitate n-heptane’s accessibility to the active sites of zeolite Y and ZSM-5.
期刊介绍:
Frontiers of Chemical Science and Engineering presents the latest developments in chemical science and engineering, emphasizing emerging and multidisciplinary fields and international trends in research and development. The journal promotes communication and exchange between scientists all over the world. The contents include original reviews, research papers and short communications. Coverage includes catalysis and reaction engineering, clean energy, functional material, nanotechnology and nanoscience, biomaterials and biotechnology, particle technology and multiphase processing, separation science and technology, sustainable technologies and green processing.