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基于等离子体方括号二聚体超表面的高Q因子、高对比度和多波段光学传感器。

High Q-Factor, High Contrast, and Multi-Band Optical Sensor Based on Plasmonic Square Bracket Dimer Metasurface.

作者信息

Ni Bin, Chu Guanghu, Xu Zheyang, Hou Lianping, Liu Xuefeng, Xiong Jichuan

机构信息

School of Electronic and Optical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.

James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

Nanomaterials (Basel). 2024 Feb 25;14(5):421. doi: 10.3390/nano14050421.

Abstract

A high-performance resonant metasurface is rather promising for diverse application areas such as optical sensing and filtering. Herein, a metal-insulator-metal (MIM) optical sensor with merits of a high quality-factor (Q-factor), multiple operating bands, and high spectrum contrast is proposed using plasmonic square bracket dimer metasurface. Due to the complex square bracket itself, a dimer structure of two oppositely placed square brackets, and metasurface array configuration, multiple kinds of mode coupling can be devised in the inner and outer elements within the metasurface, enabling four sensing channels with the sensitivities higher than 200 nm/RIU for refractive index sensing. Among them, the special sensing channel based on the reflection-type surface lattice resonance (SLR) mechanism has a full width at half maximum (FWHM) of only 2 nm, a high peak-to-dip signal contrast of 0.82, a high Q-factor of 548, and it can also behave as a good sensing channel for the thickness measurement of the deposition layer. The multi-band sensor can work normally in a large refractive index or thickness range, and the number of resonant channels can be further increased by simply breaking the structural symmetry or changing the polarization angle of incident light. Equipped with unique advantages, the suggested plasmonic metasurface has great potential in sensing, monitoring, filtering, and other applications.

摘要

高性能谐振超表面在光学传感和滤波等多种应用领域颇具前景。在此,利用等离子体方括号二聚体超表面提出了一种具有高品质因数(Q 因子)、多个工作频段和高光谱对比度等优点的金属-绝缘体-金属(MIM)光学传感器。由于方括号本身结构复杂、两个相对放置的方括号构成二聚体结构以及超表面阵列配置,在超表面的内部和外部元件中可以设计出多种模式耦合,从而实现四个用于折射率传感的灵敏度高于 200 nm/RIU 的传感通道。其中,基于反射型表面晶格共振(SLR)机制的特殊传感通道半高宽(FWHM)仅为 2 nm,峰谷信号对比度高达 0.82,Q 因子高达 548,并且它还可以作为沉积层厚度测量的良好传感通道。该多频段传感器可以在较大的折射率或厚度范围内正常工作,并且通过简单地打破结构对称性或改变入射光的偏振角可以进一步增加谐振通道的数量。由于具有独特优势,所提出的等离子体超表面在传感、监测、滤波及其他应用中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8dec/10934883/04253777c5b6/nanomaterials-14-00421-g001.jpg

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