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Photonic crystal and plasmonic nanohole based label-free biodetection

机译:光子晶体和等离子体纳米醇的无标签生物渗

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摘要

Photonic crystals and plasmonic nanohole arrays are the conventional substrates for label-free biodetection applications. In this article, we readdressed these systems in terms of their sensing capability and provided a broad picture for a selection mechanism of optimum parameters providing strong sensing signals. We first investigated the physical origin of the transmission resonances supported by the two systems, which is the core of the label-free sensing mechanism, relying on strong light-matter interactions. We conducted an extensive theoretical study on optical and sensing properties of the two systems, e.g., linewidth of the optical modes, refractive index sensitivity and figure-of-merit capacities. Our theoretical analyses provided a rule-of-thumb method for the selection of geometrical device parameters of the two systems. In order to experimentally investigate the sensing properties, we fabricated the two systems via a lift-off free fabrication method based on electron beam lithography, where the plasmonic nanohole arrays are realized by covering the phonic crystal surface with a thin metal. As an example, we demonstrated the sensing strength of two systems with identical dimensions by monitoring the spectral variations within their optical responses. We also performed label-free sensing experiments through detection of protein mono- and bilayers, where the geometrical parameters favor the plasmonic sensor system. Integrating a high-resolution optical read-out scheme with a multi-spectral data tracking technique, we achieved an experimentally minimum detectable protein concentration as low as 200 pg/mL for the plasmonic nanohole array and 1 ng/mL for the photonic crystal based sensing platform.
机译:光子晶体和等离子体纳米孔阵列是用于无标记的生物竞选应用的常规基材。在本文中,我们在其传感能力方面重新读出了这些系统,并为提供了强烈感测信号提供了最佳参数的选择机制,提供了广泛的图像。我们首先研究了两个系统支持的传输共振的物理来源,这是无标签传感机制的核心,依赖于强烈的浅点相互作用。我们对两种系统的光学和感测性能进行了广泛的理论研究,例如光学模式的线宽,折射率灵敏度和优异的能力。我们的理论分析提供了一种用于选择两个系统的几何设备参数的拇指方法。为了通过实验研究感测性能,我们通过基于电子束光刻的剥离自由制造方法制造了两个系统,其中通过用薄金属覆盖Phonic晶体表面来实现等离子体纳米孔阵列。作为示例,我们通过监视其光学响应内的光谱变化来证明具有相同尺寸的两个系统的感测强度。我们还通过检测蛋白质单位和双层进行无标记的感测实验,其中几何参数有利于等离子体传感器系统。通过多光谱数据跟踪技术集成高分辨率光学读出方案,我们通过基于光子晶体的感测的等离子体纳米孔阵列和1ng / ml实现了低至200pg / ml的实验最小可检测蛋白质浓度,以及1ng / ml平台。

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