Abstract

Over the past decades, extensive efforts have been devoted to modulating the textural properties, morphology and microstructure of γ-Al2O3, since the physiochemical properties of γ-Al2O3 have close correlations with the performance of hydrotreating catalysts. In this work, a spongy mesoporous γ-alumina (γ-Al2O3) was synthesized using Al-based metal-organic frameworks (Al-MOFs) as precursor by two-step pyrolysis, and this Al-MOF-derived γ-Al2O3 was used as hydrodesulfurization (HDS) catalyst support, to explore the effect of support on the HDS performance. Compared with industrial γ-Al2O3, the spongy alumina displayed well-developed porosity with relatively high surface area, large pore volume, and abundant weak Lewis acid sites. Based on catalyst characterization and performance evaluation, sulfurized molybdenum and cobalt molecules were able to incorporate and highly disperse into channels of the spongy mesoporous alumina, increasing the dispersion of active catalytic species. The spongy γ-Al2O3 was also able to enhance the diffusion efficiency and mass transfer of reactant molecules due to its improved texture properties. Therefore, the corresponding catalyst presented higher activities toward HDS of dibenzothiophene (DBT) than that from industrial alumina. The spongy mesoporous γ-alumina synthesized by Al-MOFs provides a new alternative to further develop novel γ-alumina materials with different texture and various nanoporous structures, considering the diversity of MOFs with different compositions, topological structures, and morphology.

Highlights

  • To meet the increasing emphasis on quality upgrading requirements of clean fuels, it is imperative to improve and develop hydrotreating catalysts with high activity [1,2]

  • Characterization of γ-Al2 O3 Synthesized from Al-based metal-organic frameworks (Al-MOFs)

  • A kind of γ-alumina (γ-Al2 O3 ) with spongy-like structure was prepared by two-step pyrolysis of Al-based metal-organic frameworks

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Summary

Introduction

To meet the increasing emphasis on quality upgrading requirements of clean fuels, it is imperative to improve and develop hydrotreating catalysts with high activity [1,2]. Especially γ-Al2 O3 , has been widely used as supports in commercial catalysts for hydrotreating and petroleum refining processes. Porous structure, suitable acidity, as well as excellent thermal and mechanical stability of γ-Al2 O3 are all beneficial factors for catalyst supports [3,4]. Controlling of textural properties, morphology and microstructure of γ-Al2 O3 are important aspects to improve the efficiency of alumina in catalysis [5]. The structure and morphology of γ-Al2 O3 could be inherited from the precursor during the thermal transformation process. Complete understanding of precursor and innovative synthesized procedures are essential to synthesize γ-Al2 O3 with excellent performance

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