Alkenyl succinic anhydride modified tree-gum kondagogu: A bio-based material with potential for food packaging
Jazyk angličtina Země Anglie, Velká Británie Médium print-electronic
Typ dokumentu časopisecké články
PubMed
34044942
DOI
10.1016/j.carbpol.2021.118126
PII: S0144-8617(21)00513-0
Knihovny.cz E-zdroje
- Klíčová slova
- Biodegradable, Bioplastics, DDSA modification, Food packaging films, Gum Kondagogu,
- MeSH
- alkeny chemická syntéza chemie farmakologie MeSH
- anhydridy kyseliny jantarové chemie MeSH
- antibakteriální látky chemická syntéza chemie farmakologie MeSH
- biologicky odbouratelné plasty chemická syntéza chemie farmakologie MeSH
- Bixaceae chemie MeSH
- Escherichia coli účinky léků MeSH
- hydrofobní a hydrofilní interakce MeSH
- modul pružnosti MeSH
- obaly potravin * MeSH
- pevnost v tahu MeSH
- rostlinné gumy chemická syntéza chemie farmakologie MeSH
- Staphylococcus aureus účinky léků MeSH
- testování materiálů MeSH
- Publikační typ
- časopisecké články MeSH
- Názvy látek
- alkeny MeSH
- anhydridy kyseliny jantarové MeSH
- antibakteriální látky MeSH
- biologicky odbouratelné plasty MeSH
- rostlinné gumy MeSH
Tree gums are a class of abundantly available carbohydrate polymers that have not been explored thoroughly in film fabrication for food packaging. Films obtained from pristine tree gums are often brittle, hygroscopic, and lack mechanical strength. This study focuses on the chemical modification of gum kondagogu using long-chain alkenyl groups of dodecenyl succinic anhydride (DDSA), an esterifying agent that introduces a 12-carbon hydrophobic chain to the kondagogu structure. The esterification reaction was confirmed by 1H nuclear magnetic resonance and Fourier-transform infrared spectroscopy. The effect of nano-cellulose as an additive on various film properties was investigated. The developed films were characterized for their mechanical, morphological, optical, barrier, antibacterial, and biodegradable properties. The inclusion of long-chain carbon groups acted as internal plasticizers and resulted in an amorphous structure with better film-forming ability, improved hydrophobicity, and higher elongation at break values. The modified films exhibited antibacterial properties and excellent biodegradability under aerobic conditions.
Inorganic Chemistry 1 University of Bayreuth Universittsstraße 30 95447 Bayreuth Germany
Macromolecular Chemistry 2 University of Bayreuth Universittsstraße 30 95447 Bayreuth Germany
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