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Thermo-induced electromagnetic coupling in gold/polymer hybrid plasmonic structures probed by surface-enhanced raman scattering

机译:表面增强拉曼散射探测金/聚合物杂化等离子体结构中的热感应电磁耦合

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This paper describes a general stepwise strategy combining diazonium salt, surface-initiated atom transfer radical polymerization (SI-ATRP), and click chemistry for an efficient gold surface functionalization by poly(N-isopropylacrylamide) (PNIPAM) brushes and gold nanoparticle assemblies. We designed by this way a new plasmonic device made of gold nanoparticles separated from a gold film through a thermoresponsive polymer layer. This organic layer responds to temperature variations by conformational changes (with a characteristic temperature called the lower critical solution temperature, LCST) and is therefore able to vary the distance between the gold nanoparticles and the gold film. The optical properties of these stimulable substrates were probed by surface-enhanced raman scattering (SERS) using methylene blue (MB) as a molecular probe. We show that an increase of the external temperature reversibly induces a significant enhancement of the MB SERS signal. This was attributed to a stronger interaction between the gold nanoparticles and the gold substrate. The temperature-responsive plasmonic devices developed in this paper thus provide a dynamic SERS platform, with thermally switchable electromagnetic coupling between the gold nanoparticles and the gold surface.
机译:本文介绍了一种一般的逐步策略,该策略结合了重氮盐,表面引发的原子转移自由基聚合(SI-ATRP)和单击化学,以通过聚(N-异丙基丙烯酰胺)(PNIPAM)刷和金纳米颗粒组件有效地金表面官能化。我们通过这种方式设计了一种新的等离子设备,该设备由通过热响应性聚合物层与金膜分离的金纳米颗粒制成。该有机层通过构象变化(具有称为较低临界溶液温度,LCST的特征温度)对温度变化做出响应,因此能够改变金纳米颗粒与金膜之间的距离。使用亚甲基蓝(MB)作为分子探针,通过表面增强拉曼散射(SERS)探测了这些可刺激基质的光学特性。我们表明,外部温度的升高可逆地引起MB SERS信号的显着增强。这归因于金纳米颗粒和金基底之间更强的相互作用。因此,本文开发的温度响应等离子体设备提供了一个动态SERS平台,在金纳米颗粒和金表面之间具有可热切换的电磁耦合。

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