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用于布洛赫表面波光谱和偏振路由的多功能片上定向耦合器。

Multifunctional on-chip directional coupler for spectral and polarimetric routing of Bloch surface wave.

作者信息

Lei Xinrui, Wang Ruxue, Liu Li, Xu Chengjie, Wu Aimin, Zhan Qiwen

机构信息

School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai, 200093, P. R. China.

Zhangjiang Laboratory, 100 Haike Road, Shanghai, 201204, P. R. China.

出版信息

Nanophotonics. 2022 Sep 20;11(21):4627-4636. doi: 10.1515/nanoph-2022-0397. eCollection 2022 Dec.

Abstract

Integration of multiple diversified functionalities into an ultracompact platform is crucial for the development of on-chip photonic devices. Recently, a promising all-dielectric two-dimensional platform based on Bloch surface waves (BSWs) sustained by dielectric multilayer has been proposed to enable various functionalities and provide novel approach to photonic devices. Here, we design and fabricate a multifunctional directional coupler to achieve both spectral and polarimetric routing by employing asymmetric nanoslits in a dielectric multilayer platform. Due to the dispersion property of BSWs, the directional coupling behavior is sensitive to wavelength and polarization. We demonstrate numerically and experimentally the wavelength selective directional coupling of TE BSW mode with an intensity ratio of the BSW excitation in opposite directions reaching 10 dB. Polarization selective directional coupling is also achieved at specific operating wavelength due to different response to a nanoantenna for TE and TM BSWs. The proposed two-dimensional photonic device opens new pathway for a wide range of practical applications such as molecular sensing, imaging with different polarization, and spectral requirements.

摘要

将多种多样化功能集成到超紧凑平台中对于片上光子器件的发展至关重要。最近,有人提出了一种基于由介质多层膜维持的布洛赫表面波(BSW)的有前景的全介质二维平台,以实现各种功能并为光子器件提供新方法。在此,我们设计并制造了一种多功能定向耦合器,通过在介质多层膜平台中采用不对称纳米狭缝来实现光谱和偏振路由。由于BSW的色散特性,定向耦合行为对波长和偏振敏感。我们通过数值和实验证明了TE BSW模式的波长选择性定向耦合,其在相反方向上的BSW激发强度比达到10 dB。由于TE和TM BSW对纳米天线的响应不同,在特定工作波长下也实现了偏振选择性定向耦合。所提出的二维光子器件为诸如分子传感、不同偏振成像以及光谱要求等广泛的实际应用开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/620c/11501675/c02bcba162b8/j_nanoph-2022-0397_fig_001.jpg

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