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Keywords = 5-methylfurfurylamine

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2 pages, 311 KB  
Correction
Correction: Amaral et al. Thermochemical Research on Furfurylamine and 5-Methylfurfurylamine: Experimental and Computational Insights. Molecules 2024, 29, 2729
by Luísa M. P. F. Amaral, Ana R. R. P. Almeida and Manuel A. V. Ribeiro da Silva
Molecules 2025, 30(13), 2773; https://doi.org/10.3390/molecules30132773 - 27 Jun 2025
Viewed by 354
Abstract
In the original publication [...] Full article
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14 pages, 1762 KB  
Article
Thermochemical Research on Furfurylamine and 5-Methylfurfurylamine: Experimental and Computational Insights
by Luísa M. P. F. Amaral, Ana R. R. P. Almeida and Manuel A. V. Ribeiro da Silva
Molecules 2024, 29(12), 2729; https://doi.org/10.3390/molecules29122729 - 7 Jun 2024
Cited by 3 | Viewed by 2459 | Correction
Abstract
The need to transition from fossil fuels to renewables arises from factors such as depletion, price fluctuations, and environmental considerations. Lignocellulosic biomass, being abundant, and quickly renewable, and not interfering with food supplies, offers a standout alternative for chemical production. This paper explores [...] Read more.
The need to transition from fossil fuels to renewables arises from factors such as depletion, price fluctuations, and environmental considerations. Lignocellulosic biomass, being abundant, and quickly renewable, and not interfering with food supplies, offers a standout alternative for chemical production. This paper explores the energetic characteristics of two derivatives of furfural—a versatile chemical obtained from biomass with great potential for commercial sustainable chemical and fuel production. The standard (p° = 0.1 MPa) molar enthalpies of formation of the liquids furfurylamine and 5-methylfurfurylamine were derived from the standard molar energies of combustion, determined in oxygen and at T = 298.15 K, by static bomb combustion calorimetry. Their standard molar enthalpies of vaporization were also determined at the same temperature using high-temperature Calvet microcalorimetry. By combining these data, the gas-phase enthalpies of formation at T = 298.15 K were calculated as −(43.5 ± 1.4) kJ·mol−1 for furfurylamine, and −(81.2 ± 1.7) kJ·mol−1 for 5-methylfurfurylamine. Furthermore, a theoretical analysis using G3 level calculations was performed, comparing the calculated enthalpies of formation with the experimental values to validate both results. This method has been successfully applied to similar molecules. The discussion looks into substituent effects in terms of stability and compares them with similar compounds. Full article
(This article belongs to the Special Issue Thermodynamics of Organic Materials)
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2 pages, 114 KB  
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4-Methyl-N-(5-methyl-furan-2-ylmethyl)-benzenesulfonamide (N-(5-Methyl-furfuryl)-p-toluenesulfonamide)
by Holger Meining and Baldur Föhlisch
Molbank 2005, 2005(2), M407; https://doi.org/10.3390/M407 - 1 Aug 2005
Cited by 2 | Viewed by 2985
Abstract
5-Methylfurfurylamine was prepared from commercially available 5-methylfurfural via the oxime, followed by LiAlH4 reduction [1].[...] Full article
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