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Highly reinforced and degradable lignocellulose biocomposites by polymerization of new polyester oligomers
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Fibre- and Polymer Technology, Biocomposites. KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Centres, Wallenberg Wood Science Center. RISE Bioeconomy and health, Stockholm, Sweden.ORCID iD: 0000-0002-2984-7702
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Fibre- and Polymer Technology, Biocomposites. KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Centres, Wallenberg Wood Science Center.ORCID iD: 0000-0002-5081-1835
RISE Bioecon & Hlth, Stockholm, Sweden..
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Fibre- and Polymer Technology, Biocomposites. KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Centres, Wallenberg Wood Science Center.ORCID iD: 0000-0001-5818-2378
2022 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 13, no 1, article id 5666Article in journal (Refereed) Published
Abstract [en]

Unbleached wood fibers and nanofibers are environmentally friendly bio-based candidates for material production, in particular, as reinforcements in polymer matrix biocomposites due to their low density and potential as carbon sink during the materials production phase. However, producing high reinforcement content biocomposites with degradable or chemically recyclable matrices is troublesome. Here, we address this issue with a new concept for facile and scalable in-situ polymerization of polyester matrices based on functionally balanced oligomers in pre-formed lignocellulosic networks. The idea enabled us to create high reinforcement biocomposites with well-dispersed mechanically undamaged fibers or nanocellulose. These degradable biocomposites have much higher mechanical properties than analogs in the literature. Reinforcement geometry (fibers at 30 mu m or fibrils at 10-1000 nm diameter) influenced the polymerization and degradation of the polyester matrix. Overall, this work opens up new pathways toward environmentally benign materials in the context of a circular bioeconomy. Cellulose biocomposites from nanocellulose or plant fibers with polymer matrix are often not degradable and suffer from insufficient mechanical properties to replace established materials. Here, the authors demonstrate the fabrication of hydrolytically degradable polymers through in-situ polymerization of new functionally balanced oligomers within high-content lignocellulose reinforcement networks.

Place, publisher, year, edition, pages
Springer Nature , 2022. Vol. 13, no 1, article id 5666
National Category
Organic Chemistry
Identifiers
URN: urn:nbn:se:kth:diva-320425DOI: 10.1038/s41467-022-33283-zISI: 000860852300016PubMedID: 36167843Scopus ID: 2-s2.0-85138909148OAI: oai:DiVA.org:kth-320425DiVA, id: diva2:1705184
Note

QC 20221021

Available from: 2022-10-21 Created: 2022-10-21 Last updated: 2023-03-28Bibliographically approved

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Oliaei, ErfanOlsén, PeterBerglund, Lars A.

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