Biointerphases, volume 19, issue 6

Enhancement of antibacterial activities of green synthesized-CuO/ZnO nanocomposites using Boehmeria nivea leaf extract

Truong Phi Le 1, 2
Ngoc Hong Nguyen 1, 3
Vien Ky Le 1, 2
Quan Phu Pham 1, 3
Trung Bao Ngoc Duong 1, 2, 3
Quy Ngoc Nguyen Le 1, 3
Tien Cam Thi Nguyen 1, 2
Ung Thi Dieu Thuy 4
Anh Tuan Thanh Pham 5
Linh H T Nguyen 1, 6
Ngoc Xuan Dat Mai 1, 6
Lan Thi My Nguyen 1, 2
Ngoc Kim Pham 1, 3
Show full list: 13 authors
1
 
Faculty of Biology and Biotechnology, University of Science 1 , Ho Chi Minh City, 700000,
3
 
Faculty of Materials Science and Technology, University of Science 3 , Ho Chi Minh City 700000,
5
 
Laboratory of Advanced Materials, University of Science 5 , Ho Chi Minh City 700000,
6
 
Center for Innovative Materials and Architectures (INOMAR) 6 , Ho Chi Minh City 700000,
Publication typeJournal Article
Publication date2024-11-01
Journal: Biointerphases
scimago Q2
SJR0.472
CiteScore4.1
Impact factor1.6
ISSN15594106, 19348630
Abstract

This study investigated CuO and ZnO nanoparticles and CuO/ZnO nanocomposites in a friendly environment with a low-cost and renewable biosynthesis method. This approach involved using Boehmeria nivea leaf extract to facilitate the growth and formation of nanocomposites with performance-enhancing phytochemicals released during the co-precipitation process. All nanoparticles/nanocomposites explored the microstructure, morphology, and point defects using FTIR, XRD, SEM, and PL characterization techniques. The synthesized CuO and ZnO nanoparticles and CuO/ZnO nanocomposites were evaluated for their antibacterial ability against both bacteria Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). Combining different copper and zinc salt ratios creates different arrangements and morphologies between the CuO sheets and the spherical ZnO nanoparticles. The heterojunction of CuO/ZnO samples enhances the antibacterial effects of nanocomposites compared to pure CuO and ZnO nanoparticles. The maximum antibacterial performance was achieved at 250 ppm against E. coli and 500 ppm against S. aureus in CuO50/ZnO50 nanocomposites. This study shows that a green synthesis of CuO/ZnO nanocomposites promises great potential for environmental treatment and biochemical applications.

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