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Biological sensing using hybridization phase of plasmonic resonances with photonic lattice modes in arrays of gold nanoantennas

机译:用金纳米环阵列中具有光子晶格模式的等离子体谐振杂交阶段的生物传感

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摘要

We study biological sensing using the hybridization phase of localized surface plasmon resonances (LSPRs) with diffraction modes (photonic lattice modes) in arrays of gold nanoantennas. We map the degree of the hybridization process using an embedding dielectric material (Si), identifying the critical thicknesses wherein the optical responses of the arrays are mainly governed by pure LSPRs (insignificant hybridization), Fano-type coupling of LSPRs with diffraction orders (hybridization state), and their intermediate state (hybridization phase). The results show that hybridization phase can occur with slight change in the refractive index (RI), leading to sudden reduction of the linewidth of the main spectral feature of the arrays by about one order of magnitude while it is shifted nearly 140 nm. These processes, which offer significant improvement in RI sensitivity and figure of merit, are utilized to detect monolayers of biological molecules and streptavidin-conjugated semiconductor quantum dots with sensitivities far higher than pure LSPRs. We further explore how these sensors can be used based on the uncoupled LSPRs by changing the polarization of the incident light.
机译:我们使用局部表面等离子体共振(LSPRS)的杂交阶段与衍射模式(光子晶格模式)的杂交阶段研究生物感测,在金纳纳环阵列中。我们使用嵌入介电材料(Si)来映射杂交过程的程度,识别阵列的光学响应主要由纯LSPRS(微不足道的杂交),LSPRS与衍射订单的泛型耦合(杂交状态)及其中间状态(杂交阶段)。结果表明,折射率(RI)的微小变化可能发生杂交阶段,导致阵列的主要光谱特征的脉冲脉冲突然减小在近140nm的阶数之上。这些方法提供了显着改善RI敏感性和优异图,用于检测生物分子的单层和链霉素蛋白 - 共轭半导体量子点,具有远高于纯LSPR的敏感性。我们进一步探索如何通过改变入射光的极化来基于未耦合的LSPRS来使用这些传感器。

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