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基于磁性 Fe3O4@AuAg 合金核壳纳米粒子的表面增强拉曼光谱研究。

Surface enhanced Raman spectroscopic studies on magnetic Fe3O4@AuAg alloy core-shell nanoparticles.

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2013 Oct;114:579-85. doi: 10.1016/j.saa.2013.05.098. Epub 2013 Jun 6.

Abstract

A facile approach has been developed to fabricate multifunctional Fe3O4@AuAg alloy core-shell nanoparticles, owning the magnetism of the core and the surface enhanced Raman spectroscopy (SERS) activities of the alloy shell. By changing the amount of HAuCl4 and AgNO3, Fe3O4@AuAg alloy nanoparticles with different component ratios of Au and Ag were successfully prepared. The surface plasmon resonance of the composition was linearly tuned in a wide range by varying the molar fraction of Ag and Au, suggesting the formation of AuAg alloy shell. SERS and magnetic enrichment effects were investigated by using thiophenol (TP) as the probe molecule. The SERS intensity was strongly dependent on the molar ratios of Au and Ag and the excitation line. Enrichment for the molecules with low concentration and on line SERS monitoring experiments were performed through combining the magnetism of the core and the SERS effect of the alloy shell. The results revealed that the magnetic enrichment efficiency was dramatically increased due to the strong magnetism of Fe3O4 core. In addition, the Fe3O4@AuAg nanoparticles were also used in the microfluidic chip to continuously detect different flowing solution in the channel. The detection time and amount of analyte were successfully decreased.

摘要

一种简便的方法被开发出来用于制备多功能 Fe3O4@AuAg 合金核壳纳米粒子,其拥有核的磁性和合金壳的表面增强拉曼光谱(SERS)活性。通过改变 HAuCl4 和 AgNO3 的量,成功制备了具有不同 Au 和 Ag 组分比的 Fe3O4@AuAg 合金纳米粒子。通过改变 Ag 和 Au 的摩尔分数,组成的表面等离子体共振在很宽的范围内被线性调谐,表明形成了 AuAg 合金壳。通过使用噻吩(TP)作为探针分子研究了 SERS 和磁性富集效应。SERS 强度强烈依赖于 Au 和 Ag 的摩尔比和激发线。通过结合核的磁性和合金壳的 SERS 效应,对低浓度的分子进行了富集和在线 SERS 监测实验。结果表明,由于 Fe3O4 核的强磁性,磁性富集效率大大提高。此外,Fe3O4@AuAg 纳米粒子还被用于微流控芯片中,以连续检测通道中不同的流动溶液。成功地减少了检测时间和分析物的量。

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