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傅里叶工程化表面等离激元晶格共振

Fourier-Engineered Plasmonic Lattice Resonances.

作者信息

Lim Theng-Loo, Vaddi Yaswant, Bin-Alam M Saad, Cheng Lin, Alaee Rasoul, Upham Jeremy, Huttunen Mikko J, Dolgaleva Ksenia, Reshef Orad, Boyd Robert W

机构信息

Department of Physics, University of Ottawa, 25 Templeton St, Ottawa, Ontario K1N 6N5, Canada.

School of Electrical Engineering and Computer Science, University of Ottawa, 25 Templeton St, Ottawa, Ontario K1N 6N5, Canada.

出版信息

ACS Nano. 2022 Apr 26;16(4):5696-5703. doi: 10.1021/acsnano.1c10710. Epub 2022 Mar 31.

Abstract

Resonances in optical systems are useful for many applications, such as frequency comb generation, optical filtering, and biosensing. However, many of these applications are difficult to implement in optical metasurfaces because traditional approaches for designing multiresonant nanostructures require significant computational and fabrication efforts. To address this challenge, we introduce the concept of Fourier lattice resonances (FLRs) in which multiple desired resonances can be chosen and used to dictate the metasurface design. Because each resonance is supported by a distinct surface lattice mode, each can have a high quality factor. Here, we experimentally demonstrate several metasurfaces with flexibly placed resonances (e.g., at 1310 and 1550 nm) and -factors as high as 800 in a plasmonic platform. This flexible procedure requires only the computation of a single Fourier transform for its design, and is based on standard lithographic fabrication methods, allowing one to design and fabricate a metasurface to fit any specific, optical-cavity-based application. This work represents a step toward the complete control over the transmission spectrum of a metasurface.

摘要

光学系统中的共振在许多应用中都很有用,例如频率梳产生、光学滤波和生物传感。然而,这些应用中的许多在光学超表面中都难以实现,因为设计多共振纳米结构的传统方法需要大量的计算和制造工作。为了应对这一挑战,我们引入了傅里叶晶格共振(FLR)的概念,其中可以选择多个所需的共振并用于指导超表面设计。由于每个共振都由独特的表面晶格模式支持,因此每个共振都可以具有高品质因数。在这里,我们通过实验展示了几种超表面,其共振(例如,在1310和1550nm处)灵活放置,并且在等离子体平台中的品质因数高达800。这种灵活的过程在设计时仅需要计算一次傅里叶变换,并且基于标准光刻制造方法,允许人们设计和制造适合任何特定的基于光学腔的应用的超表面。这项工作代表了朝着完全控制超表面传输光谱迈出的一步。

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Fourier-Engineered Plasmonic Lattice Resonances.傅里叶工程化表面等离激元晶格共振
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