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在粒子腔结构中调控等离子体激元。

Dressing plasmons in particle-in-cavity architectures.

机构信息

Nanophotonics Centre, Cavendish Laboratory, University of Cambridge, J J Thomson Avenue, Cambridge, CB3 0HE, UK.

出版信息

Nano Lett. 2011 Mar 9;11(3):1221-6. doi: 10.1021/nl104214c. Epub 2011 Feb 1.

Abstract

Placing metallic nanoparticles inside cavities, rather than in dimers, greatly improves their plasmonic response. Such particle-in-cavity (PIC) hybrid architectures are shown to produce extremely strong field enhancement at the particle-cavity junctions, arising from the cascaded focusing of large optical cross sections into small gaps. These simply constructed PIC structures produce the strongest field enhancement for coupled nanoparticles, up to 90% stronger than for a dimer. The coupling is found to follow a universal power law with particle-surface separation, both for field enhancements and resonant wavelength shifts. Significantly enhanced Raman signals are experimentally observed for molecules adsorbed in such PIC structures, in quantitive agreement with theoretical calculations. PIC architectures may have important implications in many applications, such as reliable single molecule sensing and light harvesting in plasmonic photovoltaic devices.

摘要

将金属纳米粒子置于腔体内,而不是二聚体中,可极大地提高其等离子体共振响应。这种粒子-腔(PIC)混合结构在粒子-腔交界处产生极强的场增强,这是由于大的光学横截面被级联聚焦到小的间隙中。这些结构简单的 PIC 产生了最强的耦合纳米粒子的场增强,比二聚体强 90%。实验观察到,无论是场增强还是共振波长位移,耦合都遵循与粒子-表面分离的普适幂律。在这种 PIC 结构中吸附的分子的拉曼信号得到了显著增强,与理论计算定量吻合。PIC 结构在许多应用中可能具有重要意义,例如可靠的单分子传感和等离子体光伏器件中的光收集。

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