2020Industrial & Engineering Chemistry ResearchRequires access

Synthesis of USY Zeolite with a High Mesoporous Content by Introducing Sn and Enhanced Catalytic Performance

Bo Meng, Shenyong Ren, Xingyu Liu, Li Zhang, Qingxun Hu, Jiujiang Wang, Qiaoxia Guo, Baojian Shen

Open publisher page 29 citations

Abstract

A method for the introduction of trace Sn atoms into zeolite Y to impart a large mesoporous pore volume is proposed, whereby the mesoporous pore volume, framework SiO 2 /Al 2 O 3 molar ratio, and crystal size were controlled by varying the Sn content. Characterization of the zeolite samples by a range of analytical techniques demonstrated that Sn entered the zeolite framework and produced superior mesopores during subsequent steam treatment, with an increased mesoporous pore volume of up to 50% being achieved compared with that of the ultrastable Y (USY) zeolite. In the catalytic cracking of 1,3,5-triisopropylbenzene, the reactivity of the Sn-containing zeolite Y differed significantly from that of USY. In addition, the Sn-containing zeolite Y exhibited a higher activity and a lower deactivation tendency than USY. Overall, the presented results indicate that this method of introducing mesopores by presetting the unstable sites in the framework of zeolite Y can have a positive influence in the preparation of mesoporous Y zeolites.

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A method for the introduction of trace Sn atoms into zeolite Y to impart a large mesoporous pore volume is proposed, whereby the mesoporous pore volume, framework SiO 2 /Al 2 O 3 molar ratio, and crystal size were controlled by varying the Sn content. Characterization of the zeolite samples by a range of analytical techniques demonstrated that Sn entered the zeolite framework and produced superior mesopores during subsequent steam treatment, with an increased mesoporous pore volume of up to 50% being achieved compared with that of the ultrastable Y (USY) zeolite. In the catalytic cracking of 1,3,5-triisopropylbenzene, the reactivity of the Sn-containing zeolite Y differed significantly from that of USY. In addition, the Sn-containing zeolite Y exhibited a higher activity and a lower deactivation tendency than USY. Overall, the presented results indicate that this method of introducing mesopores by presetting the unstable sites in the framework of zeolite Y can have a positive influence in the preparation of mesoporous Y zeolites.

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Available abstract

A method for the introduction of trace Sn atoms into zeolite Y to impart a large mesoporous pore volume is proposed, whereby the mesoporous pore volume, framework SiO 2 /Al 2 O 3 molar ratio, and crystal size were controlled by varying the Sn content. Characterization of the zeolite samples by a range of analytical techniques demonstrated that Sn entered the zeolite framework and produced superior mesopores during subsequent steam treatment, with an increased mesoporous pore volume of up to 50% being achieved compared with that of the ultrastable Y (USY) zeolite. In the catalytic cracking of 1,3,5-triisopropylbenzene, the reactivity of the Sn-containing zeolite Y differed significantly from that of USY. In addition, the Sn-containing zeolite Y exhibited a higher activity and a lower deactivation tendency than USY. Overall, the presented results indicate that this method of introducing mesopores by presetting the unstable sites in the framework of zeolite Y can have a positive influence in the preparation of mesoporous Y zeolites.

Key concepts: Zeolite, Mesoporous material, Fluid catalytic cracking, Catalysis, Materials science, Molar ratio, Chemical engineering, Reactivity (psychology)

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