Propane dehydrogenation on Ir single‐atom catalyst modified by atomically dispersed Sn promoters in silicalite‐1 zeolite

Author:

Zhang Ying1ORCID,Shi Shaolin2,Wang Ziyue1,Lan Huanshi2,Liu Liyang1,Sun Qingdi1,Guo Guanghui1,He Xiaohui13ORCID,Ji Hongbing1234ORCID

Affiliation:

1. Key Laboratory of Bioinorganic and Synthetic Chemistry of Ministry of Education Fine Chemical Industry Research Institute, School of Chemistry, IGCME, Sun Yat‐sen University Guangzhou China

2. School of Chemistry and Chemical Engineering Guangxi University Nanning China

3. Huizhou Research Institute, Sun Yat‐sen University Huizhou China

4. State Key Laboratory Breeding Base of Green‐Chemical Synthesis Technology Institute of Green Petroleum Processing and Light Hydrocarbon Conversion, College of Chemical Engineering, Zhejiang University of Technology Hangzhou China

Abstract

AbstractPropylene serves as a crucial feedstock for a wide range of industries engaged in the production of diverse petrochemical products. Propane dehydrogenation, an appealing technology aimed at supplanting conventional methodologies, confronts significant hurdles attributable to coke deposition and sintering in Pt‐based catalysts. Here, we report an Ir single atom encapsulated in silicalite‐1 zeolite modified with Sn single atoms as electronic promoters, displaying remarkable activity and stability, which is significantly greater than the previously reported Ir‐based catalysts and comparable to the majority of Pt‐based catalysts under similar industrial conditions (600°C, C3H8/H2 = 2/1). Spectroscopies results reveal that the introduction of Sn atoms promotes the transfer of electrons from Sn atoms to Ir atoms, forming electron‐rich Irδ+ species. DFT calculations show that the unique electronic structure lowers the energy barrier for two‐step dehydrogenation as well as favors the adsorption of propane and desorption of propylene, thus enhancing the activity and stability.

Funder

National Natural Science Foundation of China

Guangdong Technology Research Center for Synthesis and Separation of Thermosensitive Chemicals

Publisher

Wiley

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