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High-Molecular-Weight Polyampholytes Synthesized via Daylight-Induced, Initiator-Free Radical Polymerization of Renewable Itaconic Acid
K. Mielczarek, M. Łabanowska, M. Kurdziel, R. Konefał, H. Beneš, S. Bujok, G. Kowalski, S. Bednarz,
Jazyk angličtina Země Německo
Typ dokumentu časopisecké články
Grantová podpora
National Sustainability Program I-NPU I
Ministerstvo Školství, Mládeže a Tělovýchovy
Project POLYMAT LO1507
Ministerstvo Školství, Mládeže a Tělovýchovy
PubMed
31958194
DOI
10.1002/marc.201900611
Knihovny.cz E-zdroje
- MeSH
- cholin chemie MeSH
- makromolekulární látky chemie MeSH
- molekulová hmotnost MeSH
- polymerizace účinky záření MeSH
- polymery chemická syntéza chemie MeSH
- sukcináty chemie MeSH
- světlo MeSH
- ultrafialové záření MeSH
- volné radikály chemie MeSH
- Publikační typ
- časopisecké články MeSH
Herein, it is reported for the first time that when mixed with choline chloride, itaconic acid (IA), normally a low-reactive vinyl monomer, undergoes initiator-free radical polymerization under normal daylight. Furthermore, the process results in the formation of abnormally high-molecular-weight poly(itaconic acid) derivatives with Mw greater than ≈800 000 g mol-1 . Detailed 1D/2D NMR studies indicate that the polymers have two types of ionizable moieties, that is, anionic carboxylic and cationic choline ester groups in an average molar ratio of 12:1. Potentiometric titration shows polyampholyte behavior of the polymers. Tentative mechanistic studies reveal that the daylight-induced polymerization is initiated by species generated via interactions of near UV light with IA. However, EPR findings show that choline also participates in secondary radical reactions. The obtained polyampholytes are useful bio-based materials for fast and straightforward fabrication of polymer-clay nanocomposite hydrogels with excellent mechanical properties.
Faculty of Chemistry Jagiellonian University Gronostajowa 2 30 387 Cracow Poland
Faculty of Food Technology University of Agriculture in Krakow Balicka 122 30 149 Cracow Poland
Institute of Macromolecular Chemistry CAS Heyrovsky Sq 2 162 06 Prague 6 Czech Republic
Citace poskytuje Crossref.org
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