Abstract
| Original language | English |
|---|---|
| Journal | Polym. |
| Volume | 11 |
| Issue number | 10 |
| DOIs | |
| Publication status | Published - 20 Sept 2019 |
Keywords
- Bio-based materials
- Bio-resources
- Biopolymers
- Carbohydrate derivatives
- Green resins
- Sustainable macromolecules
- Biomolecules
- Blending
- Chlorine compounds
- Copolymerization
- Homopolymerization
- Porous materials
- Thermoanalysis
- Acid environment
- Furfuryl alcohol
- Polyfurfuryl alcohols
- Thermal analysis (TG and DSC)
- Water-resistances
- Lactic acid
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In: Polym., Vol. 11, No. 10, 20.09.2019.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Furfuryl Alcohol and Lactic Acid Blends: Homo- or Co-Polymerization?
AU - Sommerauer, L.
AU - Grzybek, J.
AU - Elsaesser, M.S.
AU - Benisek, A.
AU - Sepperer, T.
AU - Dachs, E.
AU - Hüsing, N.
AU - Petutschnigg, A.
AU - Tondi, G.
N1 - Cited By :7 Export Date: 14 December 2023 Correspondence Address: Tondi, G.; Forest Products Technology and Timber Constructions Department, Austria; email: [email protected] Funding text 1: Funding: This research was funded by EFRE (European Funds for Regional Development), AWS (Austria Wirtschafts Service) and the region of Salzburg for the support in the development of the Salzburg Center for Smart Materials. Funding text 2: This research was funded by EFRE (European Funds for Regional Development), AWS (AustriaWirtschafts Service) and the region of Salzburg for the support in the development of the Salzburg Center for Smart Materials. References: Lichtenthaler, F.W., Carbohydrates as organic raw materials. Ullmann's Encycl (2000) Ind. 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PY - 2019/9/20
Y1 - 2019/9/20
N2 - Furfuryl alcohol (FA) and lactic acid (LA) are two of the most interesting biomolecules, easily obtainable from sugars and hence extremely attractive for green chemistry solutions. These substances undergo homopolymerization and they have been rarely considered for copolymerization. Typically, FA homopolymerizes exothermically in an acid environment producing inhomogeneous porous materials, but recent studies have shown that this reaction can be controlled and therefore we have implemented this process to trigger the copolymerization with LA. The mechanical tests have shown that the blend containing small amount of FA were rigid and the fracture showed patterns more similar to the one of neat polyfurfuryl alcohol (PFA). This LA-rich blend exhibited higher chloroform and water resistances, while thermal analyses (TG and DSC) also indicated a higher furanic character than expected. These observations suggested an intimate interconnection between precursors which was highlighted by the presence of a small band in the ester region of the solid state 13C-NMR, even if the FT-IR did not evidence any new signal. These studies show that these bioplastics are basically constituted of PLA and PFA homopolymers with some small portion of covalent bonds between the two moieties.
AB - Furfuryl alcohol (FA) and lactic acid (LA) are two of the most interesting biomolecules, easily obtainable from sugars and hence extremely attractive for green chemistry solutions. These substances undergo homopolymerization and they have been rarely considered for copolymerization. Typically, FA homopolymerizes exothermically in an acid environment producing inhomogeneous porous materials, but recent studies have shown that this reaction can be controlled and therefore we have implemented this process to trigger the copolymerization with LA. The mechanical tests have shown that the blend containing small amount of FA were rigid and the fracture showed patterns more similar to the one of neat polyfurfuryl alcohol (PFA). This LA-rich blend exhibited higher chloroform and water resistances, while thermal analyses (TG and DSC) also indicated a higher furanic character than expected. These observations suggested an intimate interconnection between precursors which was highlighted by the presence of a small band in the ester region of the solid state 13C-NMR, even if the FT-IR did not evidence any new signal. These studies show that these bioplastics are basically constituted of PLA and PFA homopolymers with some small portion of covalent bonds between the two moieties.
KW - Bio-based materials
KW - Bio-resources
KW - Biopolymers
KW - Carbohydrate derivatives
KW - Green resins
KW - Sustainable macromolecules
KW - Biomolecules
KW - Blending
KW - Chlorine compounds
KW - Copolymerization
KW - Homopolymerization
KW - Porous materials
KW - Thermoanalysis
KW - Acid environment
KW - Furfuryl alcohol
KW - Polyfurfuryl alcohols
KW - Thermal analysis (TG and DSC)
KW - Water-resistances
KW - Lactic acid
UR - https://www.mendeley.com/catalogue/acf3d8e5-94c8-3d86-91f6-108d705386ba/
U2 - 10.3390/polym11101533
DO - 10.3390/polym11101533
M3 - Article
C2 - 31547001
SN - 2073-4360
VL - 11
JO - Polym.
JF - Polym.
IS - 10
ER -