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박영빈

Park, Young-Bin
Functional Intelligent Materials Lab.
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Enhanced Mechanical and Antibacterial Properties of Nanocomposites Based on Poly(vinyl Alcohol) and Biopolymer-Derived Reduced Graphene Oxide

Author(s)
Cho, Beom-GonJoshi, Shalik RamLee, SeongjinKim, Shin-KwanPark, Young-BinKim, Gun-Ho
Issued Date
2021-02
DOI
10.3390/polym13040615
URI
https://scholarworks.unist.ac.kr/handle/201301/52555
Fulltext
https://www.mdpi.com/2073-4360/13/4/615
Citation
POLYMERS, v.13, no.4, pp.615
Abstract
Functionalized graphene-polymer nanocomposites have gained significant attention for their enhanced mechanical, thermal, and antibacterial properties, but the requirement of multi-step processes or hazardous reducing agents to functionalize graphene limits their current applications. Here, we present a single-step synthesis of thermally reduced graphene oxide (TrGO) based on shellac, which is a low-cost biopolymer that can be employed to produce poly(vinyl alcohol) (PVA)/TrGO nanocomposites (PVA-TrGO). The concentration of TrGO varied from 0.1 to 2.0 wt.%, and the critical concentration of homogeneous TrGO dispersion was observed to be 1.5 wt.%, below which strong interfacial molecular interactions between the TrGO and the PVA matrix resulted in improved thermal and mechanical properties. At 1.5 wt.% filler loading, the tensile strength and modulus of the PVA-TrGO nanocomposite were increased by 98.7% and 97.4%, respectively, while the storage modulus was increased by 69%. Furthermore, the nanocomposite was 96% more effective in preventing bacterial colonization relative to the neat PVA matrix. The present findings indicate that TrGO can be considered a promising material for potential applications in biomedical devices.
Publisher
MDPI
ISSN
2073-4360
Keyword (Author)
thermal stabilityantibacterial activitynanocompositesshellacpoly(vinyl alcohol)thermally reduced graphene oxidemechanical properties

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