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Cha, Chaenyung
Integrative Biomaterials Engineering Lab.
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Comprehensive Enhancement of Mechanical, Water-Repellent and Antimicrobial Properties of Regenerated Seaweed and Plant-Based Paper with Chitosan Coating

Author(s)
Saleh, Rabi IbrahimKim, MiraeCha, Chaenyung
Issued Date
2021-11
DOI
10.3390/coatings11111384
URI
https://scholarworks.unist.ac.kr/handle/201301/55169
Fulltext
https://www.mdpi.com/2079-6412/11/11/1384
Citation
COATINGS, v.11, no.11, pp.1384
Abstract
Regenerated papers made from discarded natural sources, such as seaweeds or non-wood plants, are viewed as promising eco-friendly alternatives relative to conventional wood-based paper. However, due to its limited mechanical strength and higher water absorption than compared to traditional wood paper, it often results in premature structural disintegration. In order to overcome this limitation, this research introduces an efficient and comprehensive strategy of coating seaweed and plant papers with varying concentrations and molecular weights of chitosan. Increased concentration and molecular weight resulted in a greater amount of chitosan deposition, while the highest molecular weight also shows increased dissolution of soluble components of the paper. Since plants and seaweeds contain high anionic polysaccharide contents, the cationic chitosan shows high binding affinity towards paper. The resulting chitosan-coated papers demonstrate significant enhancements in water repellency and mechanical properties. In addition, the chitosan-coated papers also show significant bacterial inhibition effects due to the natural anti-microbial activity of chitosan.
Publisher
MDPI
ISSN
2079-6412
Keyword (Author)
regenerated paperseaweednon-wood plantchitosancoatingwater repellencymechanical propertiesantimicrobial effect
Keyword
CELLULOSEPULPPOLYSACCHARIDESPERFORMANCEMORPHOLOGYFIBERSALGAERED

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