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In situ generation of dispersed MoS2 catalysts from oil-soluble Mo-based ionic liquids for highly effective biolipids hydrodeoxygenation.

Authors :
Cai, Zhenping
Ding, Yongxin
Zhang, Jiayin
Yu, Panjie
Ma, Yongde
Cao, Yanning
Zheng, Ying
Huang, Kuan
Jiang, Lilong
Source :
Journal of Catalysis. Jul2023, Vol. 423, p50-61. 12p.
Publication Year :
2023

Abstract

[Display omitted] • Oil-soluble Mo-based ILs were utilized for the in situ generation of MoS 2 catalysts. • The hydroconversion of methyl palmitate gives 1.6 × 102 h−1 of TOF MP and 83 h−1 of TOF HDO. • The hydroconversion of methyl palmitate mainly proceeds through the HDO route. • The reaction route of hydroconversion was proposed and the kinetics was analyzed. • Mo-based ILs can also be used for efficient and solvent-free hydroconversion of palm oil. Dispersed metal sulfides are promising catalysts for the hydroconversion of biolipids to produce second-generation biodiesel. In this work, oil-soluble Mo-based ionic liquids (ILs) were innovatively utilized as the precursors for in situ generation of MoS 2 catalysts for the hydroconversion of biolipids. Taking methyl palmitate as the model compound, the excellent activity of in situ generated MoS 2 from ionic liquid Mo-based precursors was obtained. The turnover frequencies (TOFs) reached up to 1.6 × 102 h−1 for methyl palmitate conversion and 83 h−1 for hexadecane (C 16) yield at 320 °C and 0.5 h (42% conversion) under solvent-dilute conditions. The structures of in situ generated MoS 2 catalysts were characterized to provide explanations for the catalytic results. Based on the product distributions, the pathway of methyl palmitate hydroconversion was proposed, and the kinetics of methyl palmitate hydroconversion was analyzed in further detail. Applying the Mo-based ILs in the hydroconversion of methyl palmitate and palm oil under solvent-free condition also granted high conversions of feeds and selectivities of HDO products. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219517
Volume :
423
Database :
Academic Search Index
Journal :
Journal of Catalysis
Publication Type :
Academic Journal
Accession number :
163945281
Full Text :
https://doi.org/10.1016/j.jcat.2023.04.022