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Urushiol-based benzoxazine copper polymer with low surface energy, strong substrate adhesion and antibacterial for marine antifouling application

Authors :
Rong-Kun Jian
Ke Yang
Weibin Bai
Fangfang Wei
Yu-Cai Lin
Yanlian Xu
Jipeng Chen
Qi Lin
Binbin Zheng
Chunmei Huang
Source :
Journal of Cleaner Production. 318:128527
Publication Year :
2021
Publisher :
Elsevier BV, 2021.

Abstract

Biofouling is a common problem, has serious impact on the biomedical applications and maritime activities by human beings, and developing eco-friendly antifouling coatings is the key to the prevention of biofouling. Traditional low surface energy antifouling coatings, such as silicones and fluororesins, have the inherent defects of weak substrate adhesion and poor static antifouling performance. Herein, a low surface energy marine antifouling coating, urushiol-based benzoxazine copper polymer (UBCP), was synthesized using natural product urushiol and n-octylamine, paraformaldehyde as the reactants, and then CuCl2 as the catalyst for further reaction. UBCP can be cured into films at room temperature, which have strong substrate adhesion, smooth and dense surface, and controllable release of effective copper ion at minimized concentrations. Moreover, UBCP exhibits excellent antifouling performance, with both fouling release and antifoulant release characteristics. The antibacterial performance of UBCP towards typical Gram-negative bacteria (E. coli) and Gram-positive bacteria (S. aureus) both reach almost 100%, while its ability to inhibit algal activity is above 99%, and the surface of UBCP can effectively prevent microbial adhesion. In summary, UBCP is a highly effective and eco-friendly coating material and provides a promising approach to address the economic and operational issues caused by marine biofouling.

Details

ISSN :
09596526
Volume :
318
Database :
OpenAIRE
Journal :
Journal of Cleaner Production
Accession number :
edsair.doi...........2dcbab38cb168366f759df3e330f8d26
Full Text :
https://doi.org/10.1016/j.jclepro.2021.128527