Selective Transfer Hydrogenation of Biomass-Based Furfural and 5-Hydroxymethylfurfural over Hydrotalcite-Derived Copper Catalysts Using Methanol as a Hydrogen Donor

Селективное трансферное гидрирование фурфурала и 5-гидроксиметилфурфурала на медных катализаторах, полученных из гидроталькита, с использованием метанола в качестве донора водорода
Jun Zhang, Jinzhu Chen
2017-05-26

5-hydroxymethylfurfural-to-2,5-dimethylfuran conversionfurfural-to-2-methylfuran conversionfurfural-to-furfuryl alcohol conversionhydrotalcite-derived copper catalystsselective transfer hydrogenation
A series of inexpensive copper-based catalysts, derived from hydrotalcite precursors, were screened for selective transfer hydrogenation of biomass-based furfural (FFR) to furfuryl alcohol (FA) and 2-methyl furan (MF), with methanol as both the solvent and a hydrogen donor. The specific textural characteristics of the prepared catalysts were characterized by various techniques such as X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), thermogravimetric analysis/differential thermal analysis (TGA/DTA), nitrogen physisorption, temperature-programmed desorption in an ammonia atmosphere (NH 3 -TPD), temperature-programmed reduction in a hydrogen atmosphere (H 2 -TPR), infrared (IR) spectra of pyridine adsorption, and X-ray photoelectron spectroscopy (XPS). The copper catalyst showed excellent transfer hydrogenation selectivity toward FFR-to-FA transformation by giving a FA yield of 94.0 mol % at 473 K in methanol. Treating the copper catalyst with H 2 /N 2 at 773 K led to the formation of a metallic Cu species in the activated sample. Interestingly, the resulting activated copper catalyst favored FFR-to-MF transformation by producing MF yield of 94.1 mol % at 513 K. The FFR-to-MF transformation involved a tandem reaction of FFR hydrogenation and successive FA hydrogenolysis; meanwhile, a synergistic effect between metallic Cu species and acidic sites on the catalyst surface played a key role in MF formation. In addition, the activated copper catalyst exhibited outstanding performance toward another biomass-related important conversion of 5-hydroxymethylfurfural (HMF) to 2,5-dimethylfuran (DMF) with the desired DMF yield of 96.7 mol %. The recycling experiments revealed that both the copper and the activated copper catalysts maintained good activity and stability after five-time recycling. The research thus highlights a new perspective for a green, efficient, and biomass-related hydrogenation reaction using the readily available and inexpensive copper–methanol catalytic system, while, without any external hydrogen supplies.
1
Furfural-to-2-methylfuran conversion proceeded through tandem furfural hydrogenation and furfuryl alcohol hydrogenolysis, promoted by metallic copper and acidic sites.
2
H2/N2 treatment at 773 K generated metallic copper, switching selectivity toward 2-methylfuran with a 94.1 mol% yield at 513 K.
3
Hydrotalcite-derived copper catalysts enabled selective transfer hydrogenation of furfural using methanol as both solvent and hydrogen donor.
4
The activated copper catalyst converted 5-hydroxymethylfurfural to 2,5-dimethylfuran with a 96.7 mol% yield, while both catalysts remained active and stable over five recycling cycles.
5
The untreated copper catalyst selectively converted furfural to furfuryl alcohol, achieving a 94.0 mol% FA yield at 473 K.

Hydrotalcite-derived copper catalysts for methanol-mediated transfer hydrogenation of biomass-based furfural (FFR) and 5-hydroxymethylfurfural (HMF)

Selective conversion of FFR to furfuryl alcohol and 2-methylfuran, and HMF to 2,5-dimethylfuran, including the roles of metallic Cu, acidic sites, tandem hydrogenation–hydrogenolysis, activity, selectivity, and stability

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2017-05-26
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Jun Zhang
Jinzhu Chen
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