Fully Biobased Epoxy Resins from Fatty Acids and Lignin
The use of renewable resources for plastic production is an imperious need for the reduction of the carbon footprint and the transition towards a circular economy. With that goal in mind, fully biobased epoxy resins have been designed and prepared by combining epoxidized linseed oil, lignin, and a b...
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doaj-1b3d1b4826f7478980cf353e78bc808f2020-11-25T02:57:38ZengMDPI AGMolecules1420-30492020-03-01255115810.3390/molecules25051158molecules25051158Fully Biobased Epoxy Resins from Fatty Acids and LigninPablo Ortiz0Richard Vendamme1Walter Eevers2Flemish Institute for Technological Research–VITO, Separation & Conversion Technology, Boeretang 200, 2400 Mol, BelgiumFlemish Institute for Technological Research–VITO, Separation & Conversion Technology, Boeretang 200, 2400 Mol, BelgiumFlemish Institute for Technological Research–VITO, Separation & Conversion Technology, Boeretang 200, 2400 Mol, BelgiumThe use of renewable resources for plastic production is an imperious need for the reduction of the carbon footprint and the transition towards a circular economy. With that goal in mind, fully biobased epoxy resins have been designed and prepared by combining epoxidized linseed oil, lignin, and a biobased diamine derived from fatty acid dimers. The aromatic structures in lignin provide hardness and strength to an otherwise flexible and breakable epoxy resin. The curing of the system was investigated by infrared spectroscopy and differential scanning calorimetry (DSC). The influence of the different components on the thermo-mechanical properties of the epoxy resins was analyzed by DSC, thermal gravimetric analysis (TGA), and tensile tests. As the content of lignin in the resin increases, so does the glass transition, the Young’s modulus, and the onset of thermal degradation. This correlation is non-linear, and the higher the percentage of lignin, the more pronounced the effect. All the components of the epoxy resin being commodity chemicals, the present system provides a realistic opportunity for the preparation of fully biorenewable resins at an industrial scale.https://www.mdpi.com/1420-3049/25/5/1158ligninlignocellulosearomaticsbiobasedepoxyfatty acidbiopolymersbiobased materialsbiorenewable |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pablo Ortiz Richard Vendamme Walter Eevers |
spellingShingle |
Pablo Ortiz Richard Vendamme Walter Eevers Fully Biobased Epoxy Resins from Fatty Acids and Lignin Molecules lignin lignocellulose aromatics biobased epoxy fatty acid biopolymers biobased materials biorenewable |
author_facet |
Pablo Ortiz Richard Vendamme Walter Eevers |
author_sort |
Pablo Ortiz |
title |
Fully Biobased Epoxy Resins from Fatty Acids and Lignin |
title_short |
Fully Biobased Epoxy Resins from Fatty Acids and Lignin |
title_full |
Fully Biobased Epoxy Resins from Fatty Acids and Lignin |
title_fullStr |
Fully Biobased Epoxy Resins from Fatty Acids and Lignin |
title_full_unstemmed |
Fully Biobased Epoxy Resins from Fatty Acids and Lignin |
title_sort |
fully biobased epoxy resins from fatty acids and lignin |
publisher |
MDPI AG |
series |
Molecules |
issn |
1420-3049 |
publishDate |
2020-03-01 |
description |
The use of renewable resources for plastic production is an imperious need for the reduction of the carbon footprint and the transition towards a circular economy. With that goal in mind, fully biobased epoxy resins have been designed and prepared by combining epoxidized linseed oil, lignin, and a biobased diamine derived from fatty acid dimers. The aromatic structures in lignin provide hardness and strength to an otherwise flexible and breakable epoxy resin. The curing of the system was investigated by infrared spectroscopy and differential scanning calorimetry (DSC). The influence of the different components on the thermo-mechanical properties of the epoxy resins was analyzed by DSC, thermal gravimetric analysis (TGA), and tensile tests. As the content of lignin in the resin increases, so does the glass transition, the Young’s modulus, and the onset of thermal degradation. This correlation is non-linear, and the higher the percentage of lignin, the more pronounced the effect. All the components of the epoxy resin being commodity chemicals, the present system provides a realistic opportunity for the preparation of fully biorenewable resins at an industrial scale. |
topic |
lignin lignocellulose aromatics biobased epoxy fatty acid biopolymers biobased materials biorenewable |
url |
https://www.mdpi.com/1420-3049/25/5/1158 |
work_keys_str_mv |
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