表面活性剂辅助氧化石墨烯与银纳米复合材料的非共价功能化,用于高效光催化和抗生物膜应用

Q1 Materials Science
Usan Pathinathan Saleth Prabhakar , Paramasivam Shanmugam , Supakorn Boonyuen , Lakshmi Prabha Chandrasekar , Ramyakrishna Pothu , Rajender Boddula , Ahmed Bahgat Radwan , Noora Al-Qahtani
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引用次数: 0

摘要

本研究对表面活性剂辅助氧化石墨烯非共价功能化银纳米复合材料(rGS-AgNPs)的合成和表征进行了全面的研究,以获得卓越的光催化和抗生物膜性能。该方法包括使用阴离子表面活性剂(月桂基硫酸钠(SLS))、硝酸银(AgNO3)和还原氧化石墨烯(rGO)分别作为稳定/还原剂、金属前体和支撑材料。通过改变AgNO3的浓度制备不同的复合材料,得到浓度分别为0.9 × 10−3 mM、1.8 × 10−3 mM和2.7 × 10−3 mM的rGS-AgNPs复合材料。XRD、FTIR、SEM和TEM/EDS等表征技术证实了面心立方AgNPs和无定形rGO结构的形成。复合材料表现出表面活性剂与AgNPs在氧化石墨烯纳米片表面的牢固结合,从而产生有效的抗生物膜和光催化活性。rGO/SL上所支持的AgNPs的尺寸为8 ~ 10 nm。由于AgNPs的表面积增加,rGS-AgNPs复合材料的抗生物膜和光催化性能显著提高。此外,rGS-AgNPs复合材料的光催化效率在60 min内达到96.48%,优于纯AgNPs。合成过程和实际应用将用于生物传感器、食品包装技术、生物医学和药学上有价值的反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Non-covalent functionalization of surfactant-assisted graphene oxide with silver nanocomposites for highly efficient photocatalysis and anti-biofilm applications

Non-covalent functionalization of surfactant-assisted graphene oxide with silver nanocomposites for highly efficient photocatalysis and anti-biofilm applications

This study presents a comprehensive investigation on the synthesis and characterization of surfactant-assisted graphene oxide non-covalent functionalized silver nanocomposites (rGS-AgNPs) for achieving remarkable photocatalytic and anti-biofilm properties. The approach involves using an anionic surfactant (sodium lauryl sulfate (SLS)), silver nitrate (AgNO3), and reduced graphene oxide (rGO) as stabilizing/reducing agents, metal precursors, and supporting materials, respectively. Different composites were prepared by varying the concentration of AgNO3, resulting in rGS-AgNPs composites with concentrations of 0.9 × 10−3 mM, 1.8 × 10−3 mM, and 2.7 × 10−3 mM. Characterization techniques including XRD, FTIR, SEM, and TEM/EDS analysis confirmed the formation of face-centered cubic AgNPs and amorphous rGO structures. The composites exhibited a firm binding of the surfactant and AgNPs on the surface of rGO nanosheets, resulting in efficient anti-biofilm and photocatalytic activity. The size of the supported AgNPs on rGO/SL was found to be 8–10 nm. The rGS-AgNPs composites displayed significantly improved anti-biofilm and photocatalytic performance, attributed to the increased surface area of AgNPs. Moreover, the photocatalytic efficiency of the rGS-AgNPs composites reached 96.48 % within 60 min, outperforming pure AgNPs. The synthetic procedure and practical applications will be utilized for biosensors, food packing technology, biomedical and pharmaceutically valuable reactions.

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来源期刊
Materials Science for Energy Technologies
Materials Science for Energy Technologies Materials Science-Materials Science (miscellaneous)
CiteScore
16.50
自引率
0.00%
发文量
41
审稿时长
39 days
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