Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (4): 100034.doi: 10.3866/PKU.WHXB202406012

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Boron-Containing MFI Zeolite: Microstructure Control and Its Performance of Propane Oxidative Dehydrogenation

Pei Li, Yuenan Zheng, Zhankai Liu, An-Hui Lu*()   

  1. State Key Laboratory of Fine Chemicals, School of Chemical Engineering, Liaoning Key Laboratory for Catalytic Conversion of Carbon Resources, Dalian University of Technology, Dalian 116024, Liaoning Province, China
  • Received:2024-06-12 Revised:2024-07-10 Accepted:2024-07-29 Published:2024-12-28
  • Contact: Email: anhuilu@dlut.edu.cn; Tel.: +86-411-84986112 (An-Hui Lu)
  • Supported by:
    the State Key Program of National Natural Science Foundation of China(21733002); National Key Research and Development Project(2021YFA1500301); National Science Foundation for Young Scientists of China(22302030); China Postdoctoral Science Foundation(2023M730467)

Abstract:

Boron-containing zeolites can catalyze the oxidative dehydrogenation of propane (ODHP) to produce propylene. Enhancing the quantity of active boron-oxygen species and regulating the positioning of these species within the zeolite are the main challenges in developing efficient boron-based catalysts. In this study, a boron-containing zeolite catalyst with exposed (010) crystal facets, referred to as the MFI-type boron-containing zeolite (BMFI), was synthesized using a urea-assisted hydrothermal method. The research indicates that the addition of an appropriate amount of urea can regulate the morphology of the zeolite, with its short-axis flake-like structure enhancing the accessibility of active boron sites and anchoring a higher content of active boron-oxygen species through hydrogen bonding, which significantly improves the ODHP activity and olefin selectivity of the catalyst. The propane conversion rate reached 20%, with a propylene selectivity of 62.3% and a total olefin selectivity of 81.3% at 520 ℃. Compared to the ellipsoidal boron-containing catalyst formed without urea, the flake-like BMFI catalyst exhibited nearly a 20-fold increase in the reaction rate of propane. The flake-like BMFI possesses a greater number of framework tetrahedrally coordinated boron (B[4]) and defective boron species (B[3]a and B[3]b), and active boron structural evolution occurred during the reaction process, with B[3]a and B[3]b being the active sites for the catalytic reaction. This study provides a reference for the structural design and regulation of boron-based catalysts for the oxidative dehydrogenation of light alkanes.

Key words: Alkane dehydrogenation, Oxidative dehydrogenation of propane, Boron-based catalyst, Zeolite, Urea, Morphology regulation