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揭示镓促进的HZSM-5纳米晶聚集体上丙烷芳构化的结构-活性-稳定性关系

Unraveling the Structure-Activity-Stability Relationship over Gallium-Promoted HZSM-5 Nanocrystalline Aggregates for Propane Aromatization.

作者信息

Wu Yiheng, Lv Yangping, Wang Ruipu, Bao Lixia, Zhang Zhongdong, Shi Dejun, Zhang Anlv, Zhang Yaoyuan, Liu Qi, Wu Qin, Shi Daxin, Chen Kangcheng, Jiang Guiyuan, Li Hansheng

机构信息

Beijing Key Laboratory for Chemical Power Source and Green Catalysis, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, China.

Petrochemical Research Institute, PetroChina, Beijing 102206, China.

出版信息

Langmuir. 2024 Jun 11;40(23):11998-12008. doi: 10.1021/acs.langmuir.4c00544. Epub 2024 May 30.

Abstract

The aromatization of light alkane is an important process for increasing the aromatic production and utilization efficiency of light alkane resources simultaneously. Herein, Ga-modified HZSM-5 catalysts were prepared and investigated by a series of characterization techniques such as X-ray diffraction, nuclear magnetic resonance spectroscopy, transmission electron microscopy, N adsorption-desorption, and NH temperature-programmed desorption to study their physicochemical properties. The catalytic performance in propane aromatization was also tested. Importantly, the structure-activity relationship, reaction pathway, and coke formation mechanism in propane aromatization were systematically explored. It was found that different Ga introduction methods would affect the amounts of Brønsted and Lewis acid sites, and Ga-HZSM-5 prepared by the hydrothermal method exhibited higher amounts of Brønsted and Lewis acid sites but a lower B/L ratio. As a result, Ga-HZSM-5 showed higher propane conversion and benzene, toluene, and xylene yield compared with that of GaO/HZSM-5. The propane aromatization reaction pathway indicated that propane dehydrogenation to propene was a crucial step for aromatic formation. The increase of the Lewis acid density in Ga-HZSM-5 can effectively improve the dehydrogenation rate and promote the aromatization reaction. Furthermore, the formation of coke species was studied by thermogravimetry-mass spectrometry and Raman approaches, the results of which indicated that the graphitization degree of coke formed over spent Ga-HZSM-5 is lower, resulting in enhanced anticoking stability.

摘要

轻质烷烃的芳构化是一个既能提高芳烃产量又能提高轻质烷烃资源利用效率的重要过程。在此,制备了镓改性的HZSM-5催化剂,并通过一系列表征技术进行研究,如X射线衍射、核磁共振光谱、透射电子显微镜、N吸附-脱附以及NH3程序升温脱附,以研究其物理化学性质。还测试了丙烷芳构化的催化性能。重要的是,系统地探索了丙烷芳构化中的构效关系、反应途径和积炭形成机理。发现不同的镓引入方法会影响布朗斯台德酸和路易斯酸位点的数量,通过水热法制备的Ga-HZSM-5具有较高的布朗斯台德酸和路易斯酸位点数量,但B/L比更低。结果,与GaO/HZSM-5相比,Ga-HZSM-5表现出更高的丙烷转化率以及苯、甲苯和二甲苯产率。丙烷芳构化反应途径表明,丙烷脱氢生成丙烯是芳烃形成的关键步骤。Ga-HZSM-5中路易斯酸密度的增加可有效提高脱氢速率并促进芳构化反应。此外,通过热重-质谱联用和拉曼光谱方法研究了积炭物种的形成,结果表明,失活的Ga-HZSM-5上形成的焦炭的石墨化程度较低,从而提高了抗积炭稳定性。

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