Catalysts · 2019 · 49 citations · 62 references
EngineeringBioenergyGlucose Conversion CatalystsChemistryLewis-acid MofsChemical EngineeringBiomass ConversionNon-toxic MetalsMaterials ScienceInorganic ChemistryBiomass UtilizationMetal–organic Framework Mil-101Catalytic ApplicationIndustrial CatalysisCatalyst RecyclingCatalysisCatalytic SynthesisMil-88b StructureMil-101 StructureCatalyst Preparation
The metal–organic framework MIL-101(Cr) is known as a solid–acid catalyst for the solution conversion of biomass-derived glucose to 5-hydroxymethyl furfural (5-HMF). We study the substitution of Cr3+ by Fe3+ and Sc3+ in the MIL-101 structure in order to prepare more environmentally benign catalysts. MIL-101(Fe) can be prepared, and the inclusion of Sc is possible at low levels (10% of Fe replaced). On extended synthesis times the polymorphic MIL-88B structure instead forms.Increasing the amount of Sc also only yields MIL-88B, even at short crystallisation times. The MIL-88B structure is unstable under hydrothermal conditions, but in dimethylsulfoxide solvent, it provides 5-HMF from glucose as the major product. The optimum material is a bimetallic (Fe,Sc) form of MIL-88B, which provides ~70% conversion of glucose with 35% selectivity towards 5-HMF after 3 hours at 140 °C: this offers high conversion compared to other heterogeneous catalysts reported in the same solvent.
62
The Chemistry and Applications of Metal-Organic Frameworks
Hiroyasu Furukawa, Kyle E. Cordova, M. O’Keeffe et al. · Science · 2013 · 15.9K citations
Materials Science, Inorganic Chemistry, Organic Material Chemistry +13
A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area
Gérard Férey, Caroline Mellot‐Draznieks, Christian Serre et al. · Science · 2005 · 5.2K citations · Full text