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Enhancing performance of nanohole-based plasmonic sensors by transparent conductive oxides

机译:透明导电氧化物增强基于纳米孔的等离子体传感器的性能

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We investigated a structure for surface plasmon-polariton-based chemical sensing consisting of a square 2D lattice of circular nanoapertures drilled in a plasmonic material on a dielectric substrate. Contrary to the usual approach, we did not consider opaque metal slabs, but instead investigated a thin film of transparent conductive oxide (TCO) as the plasmonic part. Thus we ensured a simultaneous use of activity of the TCO as chemical sensing material and of its Drude-type plasmonic behavior. The nanoaperture arrays in this case serve a dual function of a tunable plasmonic guide and of a grating-type coupler between surface plasmon plaritons and propagating modes. We performed FEM electromagnetic simulation of our structures used as sensors for the case of indium tin oxide (ITO). The proposed scheme exhibits a monolayer sensitivity to chemical or biological agents and is comparable to the previously proposed plasmonic sensors, including those based on extraordinary optical transmission nanoaperture arrays. It may seem surprising that the transmission difference caused by the presence of analyte was comparable to the values found in equivalent structures utilizing opaque metal. Lower absorption losses ensure higher overall transmission through the nanoaperture array and decreases the tunable transmission range, but simultaneosly opens a path toward the use of the proposed approach in alternative geometries, for instance for in-plane propagation utilizing endfire coupling.
机译:我们研究了一种基于表面等离振子极化的化学传感结构,该结构由在电介质基板上的等离激元材料中钻出的圆形纳米孔的方形二维晶格组成。与通常的方法相反,我们没有考虑不透明的金属板,而是研究了透明导电氧化物(TCO)的薄膜作为等离子体部分。因此,我们确保同时使用TCO作为化学传感材料的活性及其Drude型等离子体行为。在这种情况下,纳米孔径阵列具有表面等离子体激元和传播模式之间的可调谐等离子体激元波导和光栅型耦合器的双重功能。我们对用作铟锡氧化物(ITO)的传感器的结构进行了有限元电磁仿真。所提出的方案表现出对化学或生物试剂的单层敏感性,并且可以与先前提出的等离子体传感器相媲美,包括基于非凡光学传输纳米孔阵列的等离子体传感器。似乎令人惊讶的是,由分析物的存在引起的透射率差异与使用不透明金属的等效结构中发现的值相当。较低的吸收损耗可确保通过纳米孔阵列的总透射率更高,并减小了可调的透射范围,但同时为在其他几何形状中使用建议的方法开辟了道路,例如利用端射耦合进行面内传播。

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