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垂直耦合等离子体激元跑道环谐振器在生物传感器中的应用。

Vertically Coupled Plasmonic Racetrack Ring Resonator for Biosensor Applications.

机构信息

Center for Photonics & 2D Materials, Moscow Institute of Physics and Technology, 9 Institutsky Lane, Dolgoprudny 141700, Russia.

Skolkovo Institute of Science and Technology, Bolshoy Boulevard 30, bld. 1, Moscow 121205, Russia.

出版信息

Sensors (Basel). 2019 Dec 30;20(1):203. doi: 10.3390/s20010203.

Abstract

Plasmonic chemical and biological sensors offer significant advantages such as really compact sizes and extremely high sensitivity. Biosensors based on plasmonic waveguides and resonators are some of the most attractive candidates for mobile and wearable devices. However, high losses in the metal and complicated schemes for practical implementation make it challenging to find the optimal configuration of a compact plasmon biosensor. Here, we propose a novel plasmonic refractive index sensor based on a metal strip waveguide placed under a waveguide-based racetrack ring resonator made of the same metal. This scheme guarantees effective coupling between the waveguide and resonator and low loss light transmittance through the long-range waveguide. The proposed device can be easily fabricated (e.g., using optical lithography) and integrated with materials like graphene oxide for providing adsorption of the biomolecules on the sensitive part of the optical elements. To analyze the properties of the designed sensing system, we performed numerical simulations along with some analytical estimations. There is one other interesting general feature of this sensing scheme that is worth pointing out before looking at its details. The sensitivity of the considered device can be significantly increased by surrounding the resonator with media of slightly different refractive indices, which allows sensitivity to reach a value of more than 1 μm per refractive index unit.

摘要

等离子体化学和生物传感器具有显著的优势,例如非常紧凑的尺寸和极高的灵敏度。基于等离子体波导和共振器的生物传感器是最有吸引力的移动和可穿戴设备候选者之一。然而,金属中的高损耗和实际实现的复杂方案使得找到紧凑等离子体生物传感器的最佳配置具有挑战性。在这里,我们提出了一种基于金属条波导的新型等离子体折射率传感器,该波导位于由相同金属制成的基于波导的跑道形环形谐振器下方。该方案保证了波导和共振器之间的有效耦合以及通过远程波导的低损耗光透射率。所提出的器件可以很容易地制造(例如,使用光学光刻技术),并与氧化石墨烯等材料集成,为生物分子在光学元件的敏感部分的吸附提供条件。为了分析设计的传感系统的特性,我们进行了数值模拟以及一些分析估计。在详细研究其细节之前,值得指出的是,这种传感方案还有另一个有趣的一般特征。通过用略微不同折射率的介质包围谐振器,可以显著提高所考虑的器件的灵敏度,从而使灵敏度达到超过每折射率单位 1 μm 的值。

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