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  4. Effects of stoichiometric variations in L-Arginine-cured epoxy resins
 
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Effects of stoichiometric variations in L-Arginine-cured epoxy resins

Citation Link: https://doi.org/10.15480/882.16253
Publikationstyp
Journal Article
Date Issued
2025-11-20
Sprache
English
Author(s)
Walter, Melissa  orcid-logo
Kunststoffe und Verbundwerkstoffe M-11  
Gibhardt, Dennis  
Kunststoffe und Verbundwerkstoffe M-11  
Fiedler, Bodo  orcid-logo
Kunststoffe und Verbundwerkstoffe M-11  
TORE-DOI
10.15480/882.16253
TORE-URI
https://hdl.handle.net/11420/59136
Journal
Polymers  
Volume
17
Issue
22
Article Number
3089
Citation
Polymers 17 (22): 3089 (2025)
Publisher DOI
10.3390/polym17223089
Scopus ID
2-s2.0-105022879154
Publisher
Multidisciplinary Digital Publishing Institute
For the purpose of reducing environmental and health risks in the production of fibre-reinforced polymers, biomolecules are increasingly examined as alternative resources. For example, amino acids can serve as curing agents for epoxy resins. However, their particular appearance and possible reactions differ from those of conventional hardeners. To find a performance-optimised mixing ratio, it is relevant to know how deviations in the mixing ratio affect the reactions that take place and the resulting thermo-mechanical properties. Consequently, in this study, eleven mixing ratios of L-arginine-cured DGEBA without a catalyst or accelerator were investigated optically, thermo-mechanically, and via FTIR analysis. Based on the theoretical stoichiometric ratio, a wide range of good thermo-mechanical properties between stoichiometric ratios of R = 0.8 and R = 1.0 could be determined. However, this study led to an extension of a possible reaction mechanism for the curing of epoxides with amino acids, particularly L-arginine, postulating the thermo-induced deprotonation of 𝛼-NH3+ groups, etherification as part of successful crosslinking, and the unfavourable reactivity of the guanidium group in the case of L-arginine, shifting the optimal to slightly sub-stoichiometric configurations.
Subjects
sustainability
biomolecules
thermo-mechanical properties
fourier transform infrared spectroscopy
network structures
reaction mechanism
DDC Class
620.1: Engineering Mechanics and Materials Science
540: Chemistry
660: Chemistry; Chemical Engineering
Lizenz
https://creativecommons.org/licenses/by/4.0/
Publication version
publishedVersion
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polymers-17-03089-v2.pdf

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