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用于光过滤和高级 SERS 检测的具有消色差亚波长结构的等离子体颜色渐变纳米系统。

Plasmonic Color-Graded Nanosystems with Achromatic Subwavelength Architectures for Light Filtering and Advanced SERS Detection.

机构信息

Istituto Italiano di Tecnologia , Via Morego 30, 16163 Genova ( Italy ).

Istituto Superconduttori, Materiali Innovativi e Dispositivi (SPIN), Consiglio Nazionale delle Ricerche , Corso Perrone 24, 16152 Genova, Italy.

出版信息

ACS Appl Mater Interfaces. 2016 Mar;8(12):8024-31. doi: 10.1021/acsami.6b00726. Epub 2016 Mar 17.

Abstract

Plasmonic color-graded systems are devices featuring a spatially variable plasmonic response over their surface. They are widely used as nanoscale color filters; their typical size is small enough to allow integration with miniaturized electronic circuits, paving the way to realize novel nanophotonic devices. Currently, most plasmonic color-graded systems are intrinsically discrete because their chromatic response exploits the tailored plasmon resonance of microarchitectures characterized by different size or geometry for each target color. Here, we report the realization of multifunctional plasmon-graded devices where continuously graded chromatic response is achieved by smoothly tuning the composition of the resonator material while simultaneously maintaining an achromatic nanoscale geometry. The result is a new class of versatile materials: we show their application as plasmonic filters with a potential pixel size smaller than half of the exciting wavelength but also as multiplexed surface-enhanced Raman spectroscopy (SERS) substrates. Many more implementations, such as photovoltaic efficiency boosters or color routers, await and will benefit from the low fabrication cost and intrinsic plasmonic flexibility of the presented systems.

摘要

等离子体颜色渐变系统是指在其表面上具有空间变化的等离子体响应的器件。它们被广泛用作纳米级彩色滤光片;其典型尺寸足够小,可以与小型化电子电路集成,为实现新型纳米光子器件铺平了道路。目前,大多数等离子体颜色渐变系统本质上是离散的,因为它们的颜色响应利用了不同尺寸或几何形状的微结构的定制等离子体共振,每个目标颜色都有不同的微结构。在这里,我们报告了多功能等离子体渐变器件的实现,其中通过平滑地调整谐振器材料的组成来实现连续渐变的颜色响应,同时保持非彩色纳米级几何形状。这是一类新的多功能材料:我们展示了它们作为等离子体滤波器的应用,其潜在的像素尺寸小于激发波长的一半,但也可以作为复用表面增强拉曼光谱 (SERS) 衬底。还有许多其他应用,例如光伏效率提升器或颜色路由器,都在等待并受益于所提出系统的低制造成本和固有等离子体灵活性。

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