Wenhao Qian, Min Xing, Mao Ye, Xiaoyu Huang, Yongjun Li, Bingjie Hao
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引用次数: 0
摘要
表面增强拉曼散射(SERS)已被视为一种前景广阔的分析技术,可用于疾病诊断、环境污染等方面的标记分子检测。贵金属纳米颗粒,尤其是金纳米颗粒(AuNPs),常用于制作 SERS 基底。在这里,我们简单地制作了一个特殊的平台,以提高 AuNPs 的分散性和均匀性。实际上,在纳米氧化石墨烯(GO)的基础上,通过对生物相容性聚乙二醇(PEG)、酸激活荧光分子(罗丹明 B 内酰胺衍生物,R'hB)和半胱胺硫醇位点进行 GO 功能化,制备了一种特殊平台(s-GO-PEG-R'hB)。然后在 s-GO-PEG-R'hB 片上原位生长 AuNPs,得到 GO/AuNPs 纳米复合材料(Au@s-GO-PEG-R'hB),用作高效 SERS 基底,可发挥 AuNPs 独特的电磁特性并提高其分散性。通过系统的形态和成分表征,证实了 Au@s-GO-PEG-R'hB 中均匀的 AuNPs 位于我们设计的多功能化 GO 片上。Au@s-GO-PEG-R'hB在对4-氨基苯硫酚(4-ATP)和对苯二胺(PD)的SERS检测中具有良好的灵敏度、稳定性和有效性。良好的 SERS 结合物结果表明,Au@s-GO-PEG-R'hB 可利用 AuNPs 和功能化 GO 固有的电化学特性优势,成为 SERS 检测中的潜在基底。因此,Au@s-GO-PEG-R'hB 可以满足现实生活中多种 SERS 传感需求。
Reproducible and acid‐responsive Rhodamine B/PEG functioned nanographene oxide‐Au nanocomposites for surface‐enhanced Raman scattering sensing
Surface‐enhanced Raman scattering (SERS) has been visualized as a promising analytical technique in marked‐molecule detection for disease diagnosis, environmental pollution, and so on. Noble metal nanoparticles, especially gold nanoparticles (AuNPs), are commonly used to fabricate SERS substrates. Herein, we facilely fabricated a special platform to improve the dispersity and homogeneity of AuNPs. Practically, based on nano‐graphene oxide (GO), a special platform (s‐GO‐PEG‐R'hB) was prepared through GO functionalization with biocompatible poly(ethylene glycol) (PEG), acid‐activated fluorescence molecule (Rhodamine B lactam derivative, R'hB) and thiol sites with cysteamine. AuNPs were then in situ grown on s‐GO‐PEG‐R'hB sheets to provide GO/AuNPs nanocomposite (Au@s‐GO‐PEG‐R'hB) for use as an efficient SERS substrate, which can exert unique electromagnetic characteristics of AuNPs and improve its dispersity. With systematic morphology and composition characterizations, it was confirmed that uniform AuNPs were located on multi‐functionalized GO sheets in Au@s‐GO‐PEG‐R'hB as we designed. Au@s‐GO‐PEG‐R'hB performed well in SERS detection towards 4‐aminothiophenol (4‐ATP) and p‐phenylenediamine (PD), with preferable sensibility, stability and effectiveness. With well‐knit SERS results, it is indicated that Au@s‐GO‐PEG‐R'hB could take the advantages of inherent electrochemical properties of AuNPs and functionalized GO to be a potential substrate in SERS detection. Thus, it is foreseen that Au@s‐GO‐PEG‐R'hB can meet diverse SERS sensing demands in real life.