Suppr超能文献

用于可调谐表面等离子体激元的面外设计软超表面。

Out-of-Plane Designed Soft Metasurface for Tunable Surface Plasmon Polariton.

机构信息

School of Optical and Electronic Information and Wuhan National Laboratory for Optoelectronics and ‡Innovation Institute, Huazhong University of Science and Technology , Wuhan 430074, China.

出版信息

Nano Lett. 2018 Feb 14;18(2):1435-1441. doi: 10.1021/acs.nanolett.7b05190. Epub 2018 Jan 8.

Abstract

Reliable and repeatable tunability gives functional diversity for reconfigurable plasmonics devices, while reversible and large mechanical deformation enabled by soft materials provides a new way for the global or partial regulation of metadevices. Here, we demonstrate a soft metasurface with an out-of-plane design for tuning the energy of surface plasmon polaritons (SPPs) bloch wave using theory, simulation, and experiments. Our metasurface is composed of two-layered gold nanoribbon arrays (2GNRs) on a soft substrate. The out-of-plane coupling mechanism is systematically analyzed in terms of separation height effect. Moreover, by harnessing mechanical deformation, continuously tunable plasmonic resonance has been achieved in the visible and near-infrared ranges. We further studied the angle-dependent reflection spectra of our metastructure. Compared with its planar counterpart, our soft and two-layered metastructure exhibits diverse tunability and significant field enhancement by out-of-plane interactions. Our approach in designing soft metasurface with out-of-plane structures can be extended to more-complex photonic devices and finds prominent applications such as biosensing, high-density plasmonic circuits, surface-enhanced luminescence, and surface-enhanced Raman scattering.

摘要

可靠且可重复的调谐性为可重构等离子体器件提供了功能多样性,而软材料实现的可逆且大的机械变形为超材料的全局或局部调控提供了新途径。在这里,我们展示了一种具有面外设计的软超表面,用于通过理论、模拟和实验来调整表面等离激元极化激元(SPP)布洛赫波的能量。我们的超表面由软基底上的两层金纳米带阵列(2GNRs)组成。从分离高度效应的角度系统地分析了面外耦合机制。此外,通过利用机械变形,在可见和近红外范围内实现了连续可调谐的等离子体共振。我们进一步研究了我们的亚结构的角度相关反射光谱。与平面对应物相比,我们的软双层亚结构通过面外相互作用表现出不同的调谐性和显著的场增强。我们对面外结构的软超表面的设计方法可以扩展到更复杂的光子器件,并在生物传感、高密度等离子体电路、表面增强发光和表面增强拉曼散射等方面具有显著的应用。

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