Conversion of biomass platform molecules into fuel additives and liquid hydrocarbon fuels

Превращение платформенных молекул биомассы в топливные присадки и жидкие углеводородные топлива
Avelino Corma, Sara Iborra, María J. Climent
2013-10-23

C–C coupling reactionsbiomass platform moleculescatalytic transformationsfuel additivesliquid hydrocarbon fuels
In this work some relevant processes for the preparation of liquid hydrocarbon fuels and fuel additives from cellulose, hemicellulose and triglycerides derived platform molecules are discussed. Thus, it is shown that a series of platform molecules such as levulinic acid, furans, fatty acids and polyols can be converted into a variety of fuel additives through catalytic transformations that include reduction, esterification, etherification, and acetalization reactions. Moreover, we will show that liquid hydrocarbon fuels can be obtained by combining oxygen removal processes (e.g. dehydration, hydrogenolysis, hydrogenation, decarbonylation/descarboxylation etc.) with the adjustment of the molecular weight via C–C coupling reactions (e.g. aldol condensation, hydroxyalkylation, oligomerization, ketonization) of the reactive platform molecules.
1
Cellulose-, hemicellulose-, and triglyceride-derived platform molecules can be transformed into liquid hydrocarbon fuels and fuel additives.
2
C–C coupling reactions such as aldol condensation, hydroxyalkylation, oligomerization, and ketonization adjust molecular weight toward liquid-fuel-range hydrocarbons.
3
Levulinic acid, furans, fatty acids, and polyols yield diverse fuel additives through reduction, esterification, etherification, and acetalization.
4
Liquid hydrocarbon fuel production requires combining oxygen-removal reactions, including dehydration, hydrogenolysis, hydrogenation, and decarbonylation/decarboxylation.

Cellulose-, hemicellulose-, and triglyceride-derived platform molecules

Catalytic conversion of platform molecules into fuel additives and liquid hydrocarbon fuels through oxygen removal and C–C coupling

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2013-10-23
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Avelino Corma
Sara Iborra
María J. Climent
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