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基于聚合物纳米材料的体波导结构的共振与传感性能

Resonant and Sensing Performance of Volume Waveguide Structures Based on Polymer Nanomaterials.

作者信息

Smirnova Tatiana, Fitio Volodymyr, Sakhno Oksana, Yezhov Pavel, Bendziak Andrii, Hryn Volodymyr, Bellucci Stefano

机构信息

Institute of Physics of NASU, Prospect Nauky, 46, 03028 Kyiv, Ukraine.

Institute of Telecommunications, Radioelectronics and Electronic Engineering, Department of Photonics, Lviv Polytechnic National University, Bandera Street, 12, 79013 Lviv, Ukraine.

出版信息

Nanomaterials (Basel). 2020 Oct 24;10(11):2114. doi: 10.3390/nano10112114.

Abstract

Organic-inorganic photocurable nanocomposite materials are a topic of intensive research nowadays. The wide variety of materials and flexibility of their characteristics provide more freedom to design optical elements for light and neutron optics and holographic sensors. We propose a new strategy of nanocomposite application for fabricating resonant waveguide structures (RWS), whose working principle is based on optical waveguide resonance. Due to their resonant properties, RWS can be used as active tunable filters, refractive index (RI) sensors, near-field enhancers for spectroscopy, non-linear optics, etc. Our original photocurable organic-inorganic nanocomposite was used as a material for RWS. Unlike known waveguide structures with corrugated surfaces, we investigated the waveguide gratings with the volume modulation of the RI fabricated by a holographic method that enables large-size structures with high homogeneity. In order to produce thin photosensitive waveguide layers for their subsequent holographic structuring, a special compression method was developed. The resonant and sensing properties of new resonant structures were experimentally examined. The volume waveguide gratings demonstrate narrow resonant peaks with a bandwidth less than 0.012 nm. The Q-factor exceeds 50,000. The sensor based on waveguide volume grating provides detection of a minimal RI change of 1 × 10 RIU. Here we also present the new theoretical model that is used for analysis and design of developed RWS. Based on the proposed model, fairly simple analytical relationships between the parameters characterizing the sensor were obtained.

摘要

有机-无机光固化纳米复合材料是当今密集研究的一个课题。材料种类繁多且特性灵活,为设计用于光和中子光学以及全息传感器的光学元件提供了更多自由度。我们提出了一种用于制造谐振波导结构(RWS)的纳米复合材料应用新策略,其工作原理基于光波导共振。由于其共振特性,RWS可用作有源可调滤波器、折射率(RI)传感器、光谱近场增强器、非线性光学等。我们原始的光固化有机-无机纳米复合材料被用作RWS的材料。与已知的具有波纹表面的波导结构不同,我们研究了通过全息方法制造的具有RI体积调制的波导光栅,该方法能够制造具有高均匀性的大尺寸结构。为了制备用于后续全息结构化的薄光敏波导层,开发了一种特殊的压缩方法。通过实验研究了新型谐振结构的共振和传感特性。体积波导光栅展示出带宽小于0.012 nm的窄共振峰。品质因数超过50,000。基于波导体积光栅的传感器能够检测到低至1×10 RIU的最小RI变化。在此我们还提出了用于分析和设计所开发的RWS的新理论模型。基于所提出的模型,获得了表征传感器的参数之间相当简单的解析关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e2f/7690908/e20ad689163b/nanomaterials-10-02114-g001.jpg

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