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  • Pharmaceuticals and Surfactants from Alga-Derived Feedstock: Amidation of Fatty Acids and Their Derivatives with Amino Alcohols.

Pharmaceuticals and Surfactants from Alga-Derived Feedstock: Amidation of Fatty Acids and Their Derivatives with Amino Alcohols.

ChemSusChem (2015-07-23)
Anastasia Tkacheva, Inkar Dosmagambetova, Yann Chapellier, Päivi Mäki-Arvela, Imane Hachemi, Risto Savela, Reko Leino, Carolina Viegas, Narendra Kumar, Kari Eränen, Jarl Hemming, Annika Smeds, Dmitry Yu Murzin
ABSTRACT

Amidation of renewable feedstocks, such as fatty acids, esters, and Chlorella alga based biodiesel, was demonstrated with zeolites and mesoporous materials as catalysts and ethanolamine, alaninol, and leucinol. The last two can be derived from amino acids present in alga. The main products were fatty alkanol amides and the corresponding ester amines, as confirmed by NMR and IR spectroscopy. Thermal amidation of technical-grade oleic acid and stearic acid at 180 °C with ethanolamine were non-negligible; both gave 61% conversion. In the amidation of stearic acid with ethanolamine, the conversion over H-Beta-150 was 80% after 3 h, whereas only 63% conversion was achieved for oleic acid; this shows that a microporous catalyst is not suitable for this acid and exhibits a wrinkled conformation. The highest selectivity to stearoyl ethanolamide of 92% was achieved with mildly acidic H-MCM-41 at 70% conversion in 3 h at 180 °C. Highly acidic catalysts favored the formation of the ester amine, whereas the amide was obtained with a catalyst that exhibited an optimum acidity. The conversion levels achieved with different fatty acids in the range C12-C18 were similar; this shows that the fatty acid length does not affect the amidation rate. The amidation of methyl palmitate and biodiesel gave low conversions over an acidic catalyst, which suggested that the reaction mechanism in the amidation of esters was different.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Ethanolamine, purified by redistillation, ≥99.5%
Sigma-Aldrich
Methyl palmitate, ≥99% (capillary GC)
Sigma-Aldrich
Palmitoylethanolamide
Sigma-Aldrich
Ethanolamine, liquid, BioReagent, suitable for cell culture, ≥98%
Sigma-Aldrich
Ethanolamine, ACS reagent, ≥99.0%
Sigma-Aldrich
Ethanolamine, ≥98%
Sigma-Aldrich
Ethanolamine, ≥99%
Sigma-Aldrich
Palmitic acid, ≥98%, FCC, FG
Sigma-Aldrich
Palmitic acid, BioXtra, ≥99%
Sigma-Aldrich
Palmitic acid, ≥98% palmitic acid basis (GC)
Sigma-Aldrich
Linoleic acid, technical, 58-74% (GC)
Sigma-Aldrich
Palmitic acid, ≥99%
Sigma-Aldrich
Methyl palmitate, ≥97%
Sigma-Aldrich
Palmitic acid, natural, 98%, FG
Sigma-Aldrich
Linoleic acid, liquid, BioReagent, suitable for cell culture
Sigma-Aldrich
Stearic acid, Grade I, ≥98.5% (capillary GC)
Sigma-Aldrich
α-Linoleic acid, ≥98%
Sigma-Aldrich
Argon-40Ar, 99.95 atom %
Sigma-Aldrich
Oleic acid, natural, FCC
Sigma-Aldrich
Stearic acid, reagent grade, 95%
Sigma-Aldrich
Stearic acid, ≥95%, FCC, FG
Sigma-Aldrich
DL-Alaninol, 98%
Sigma-Aldrich
Eicosane, 99%
Sigma-Aldrich
Hexane, anhydrous, 95%
Sigma-Aldrich
Oleic acid, meets analytical specification of Ph, Eur., 65.0-88.0% (GC)
Sigma-Aldrich
Pyridine, anhydrous, 99.8%
Sigma-Aldrich
Pyridine, ≥99%
Sigma-Aldrich
Oleic acid, technical grade, 90%
Sigma-Aldrich
Oleic acid, ≥99% (GC)
Sigma-Aldrich
Oleic acid, BioReagent, suitable for cell culture