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Interesterification of Glyceryl Trioctanoate Catalyzed by Sulfonic Silica-Based Materials: Insight into the Role of Catalysts on the Reaction Mechanism. | LitMetric

AI Article Synopsis

  • The study explored acid-catalyzed interesterification of glyceryl trioctanoate (GTO) with ethyl acetate as a method for producing biofuels and additives using heterogeneous acid catalysts.
  • Different propyl-sulfonic silica catalysts were tested and characterized, revealing that catalyst properties significantly influence their effectiveness in the reaction.
  • Adding ethanol to the process enhanced the total conversion of GTO, leading to high yields of ethyl octanoate and triacetin, while factors like reaction time and catalyst amount further optimized the biofuel mixture's production.

Article Abstract

In the present work, the acid-catalyzed interesterification of glyceryl trioctanoate (GTO) with ethyl acetate was investigated as a model reaction for the one-step production of biofuel and its additives. The activity of heterogeneous acid catalysts, such as silica-based propyl-sulfonic ones, was evaluated. Propyl-sulfonic groups were grafted on both amorphous and mesoporous silica oxide (SBA-15, KIT-6) using different functionalization processes and characterized by N adsorpion-desorption isotherm (BET), thermogravimetric analysis (TGA), scanning electron microscopy (SEM), attenuated total reflectance-Fourier transform infrared (ATR-FTIR) spectroscopy, and potentiometric titration. During the optimization of the reaction conditions with the most active catalyst (Am-Pr-SOH), it was shown that the addition of ethanol allowed a total conversion of GTO together with 89% and 56% yield of ethyl octanoate and triacetin, respectively. The catalytic performance is strictly correlated to the catalyst features, in terms of both the acid capacity and the porous structure. Moreover, the catalytic performance is also affected by a synergistic mechanism between silanols and Pr-SOH groups towards the 'silanolysis' of ethyl acetate. The overall results show that the presence of ethanol, the reaction time, and the amount of catalyst shifts the reaction towards the formation of the biofuel mixture composed by ethyl octanoate and triacetin.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10383590PMC
http://dx.doi.org/10.3390/ma16145121DOI Listing

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