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在单个定制的纳米聚焦中增强的纳米天线气体传感。

Nanoantenna-enhanced gas sensing in a single tailored nanofocus.

机构信息

Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, USA.

出版信息

Nat Mater. 2011 May 15;10(8):631-6. doi: 10.1038/nmat3029.

Abstract

Metallic nanostructures possess plasmonic resonances that spatially confine light on the nanometre scale. In the ultimate limit of a single nanostructure, the electromagnetic field can be strongly concentrated in a volume of only a few hundred nm(3) or less. This optical nanofocus is ideal for plasmonic sensing. Any object that is brought into this single spot will influence the optical nanostructure resonance with its dielectric properties. Here, we demonstrate antenna-enhanced hydrogen sensing at the single-particle level. We place a single palladium nanoparticle near the tip region of a gold nanoantenna and detect the changing optical properties of the system on hydrogen exposure by dark-field microscopy. Our method avoids any inhomogeneous broadening and statistical effects that would occur in sensors based on nanoparticle ensembles. Our concept paves the road towards the observation of single catalytic processes in nanoreactors and biosensing on the single-molecule level.

摘要

金属纳米结构具有等离子体激元共振,可将光限制在纳米尺度上。在单个纳米结构的极限情况下,电磁场可以在仅几百纳米(3)或更小的体积内被强烈集中。这种光学纳米聚焦非常适合等离子体传感。任何进入这个单点的物体都会用其介电特性影响光学纳米结构的共振。在这里,我们在单粒子水平上展示了天线增强的氢传感。我们将单个钯纳米颗粒放置在金纳米天线的尖端区域附近,并通过暗场显微镜检测氢暴露时系统光学性质的变化。我们的方法避免了基于纳米颗粒集合的传感器中会出现的任何非均匀展宽和统计效应。我们的概念为在纳米反应器中观察单个催化过程以及在单分子水平上进行生物传感铺平了道路。

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