Magnetoplasmonic core–shell structured Ag@Fe3O4 particles synthesized via polyol reduction process rendering dual-functionality for bacteria ablation and dyes degradation

化学 降级(电信) 化学工程 多元醇 渲染(计算机图形) 对偶(语法数字) 纳米技术 有机化学 计算机科学 电信 计算机图形学(图像) 文学类 工程类 艺术 材料科学 聚氨酯
作者
Qing Shen,Luping Zhang,Yuan Zhao,Xiaobing Han,Jie Gao,Yue‐Sheng Li,Xiaoming Zhu,Tian Liang,Tao Chen
出处
期刊:Arabian Journal of Chemistry [Elsevier BV]
卷期号:18 (1): 106058-106058 被引量:9
标识
DOI:10.1016/j.arabjc.2024.106058
摘要

The Ag nanoparticles demonstrate potent bacteria eradication capabilities; however, their tendency to aggregate in aqueous solutions compromises the antibacterial efficacy. Furthermore, the Ag nanoparticles employed in sewage treatment are challenging to recycle, resulting in environmental pollution and resource wastage. Herein, the Ag-core Fe 3 O 4 -shell structured particles (Ag@Fe 3 O 4 ) are synthesized by leveraging the reduction potential difference between Ag + /Ag 0 and Fe 3+ /Fe 2+ through a one-step polyol reduction process. The Fe 3 O 4 shell in the Ag@Fe 3 O 4 composite not only effectively inhibits the agglomeration of Ag, but also enhances the penetration capability of the composite into biofilms, thereby enabling Ag@Fe 3 O 4 to possess remarkable antibacterial efficacy against Escherichia coli ( E. coli ). The Ag@Fe 3 O 4 demonstrates nearly 100 % inhibition of E. coli at a concentration of 0.24 mg mL −1 (with an Ag content of 0.042 mg mL −1 ) while still maintaining antibacterial effectiveness of 74.6 % even after undergoing reutilization for 10 cycles. Meanwhile, due to the excellent electron conductivity of Ag and the effective adsorption capability of Fe 3 O 4 shell towards organic dyes, Ag@Fe 3 O 4 facilitates rapid electron transfer to organic dyes and further lead to their reduction and degradation in the presence of NaBH 4 . The Ag@Fe 3 O 4 can catalytically degrade various organic dyes (including Rhodamine B, Rhodamine 6G, and Methylene blue) within only 15 min, while achieving an impressive degradation efficiency exceeding 90.9 % after 6 cycles of reutilization. The cost-effectiveness (approximately $0.17 per gram), facile magnetic recovery, along with the superior antibacterial and dye-degradation performance showcase the significant potential of Ag@Fe 3 O 4 for medical applications and sewage treatment.
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