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Extreme sensitive metasensor for targeted biomarkers identification using colloidal nanoparticles-integrated plasmonic unit cells

机译:使用胶体纳米颗粒整合的等离激元单位细胞进行靶向生物标志物鉴定的超灵敏元传感器

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摘要

Engineered terahertz (THz) plasmonic metamaterials have emerged as promising platforms for quick infection diagnosis, cost-effective and real-time pharmacology applications owing to their non-destructive and harmless interaction with biological tissues in both in vivo and in vitro assays. As a recent member of THz metamaterials family, toroidal metamaterials have been demonstrated to be supporting high-quality sharp resonance modes. Here we introduce a THz metasensor based on a plasmonic surface consisting of metamolecules that support ultra-narrow toroidal resonances excited by the incident radiation and demonstrate detection of an ultralow concertation targeted biomarker. The toroidal plasmonic metasurface was designed and optimized through extensive numerical studies and fabricated by standard microfabrication techniques. The surface then functionalized by immobilizing the antibody for virus-envelope proteins (ZIKV-EPs) for selective sensing. We sensed and quantified the ZIKV-EP in the assays by measuring the spectral shifts of the toroidal resonances while varying the concentration. In an improved protocol, we introduced gold nanoparticles (GNPs) decorated with the same antibodies onto the metamolecules and monitored the resonance shifts for the same concentrations. Our studies verified that the presence of GNPs enhances capturing of biomarker molecules in the surrounding medium of the metamaterial. By measuring the shift of the toroidal dipolar momentum (up to Δω~0.35 cm−1) for different concentrations of the biomarker proteins, we analyzed the sensitivity, repeatability, and limit of detection (LoD) of the proposed toroidal THz metasensor. The results show that up to 100-fold sensitivity enhancement can be obtained by utilizing plasmonic nanoparticles-integrated toroidal metamolecules in comparison to analogous devices. This approach allows for detection of low molecular-weight biomolecules (≈13 kDa) in diluted solutions using toroidal THz plasmonic unit cells.
机译:工程太赫兹(THz)等离子体超材料已经成为快速感染诊断,具有成本效益的实时药理学应用的有前途的平台,这是由于它们在体内和体外测定中与生物组织的无破坏性和无害相互作用。作为THz超材料系列的最新成员,已证明环形超材料支持高质量的尖锐共振模式。在这里,我们介绍了基于等离子表面的THz元传感器,该等离子表面由支持入射辐射激发的超窄环形共振的大分子组成,并演示了超低协同靶向生物标志物的检测。环形等离子超表面是通过广泛的数值研究设计和优化的,并通过标准的微细加工技术进行制造。然后通过固定用于病毒包膜蛋白(ZIKV-EPs)的抗体进行选择性感测来使表面功能化。通过在改变浓度的同时测量环形共振的光谱位移,我们在检测中感测和定量了ZIKV-EP。在改进的方案中,我们将用相同抗体修饰的金纳米颗粒(GNP)引入到大分子上,并监测相同浓度下的共振位移。我们的研究证实,GNP的存在增强了超材料周围介质中生物标记分子的捕获。通过测量不同浓度的生物标志物蛋白的环形偶极动量(最大Δω〜0.35 cm -1 )的位移,我们分析了该蛋白的敏感性,可重复性和检测极限(LoD)。提出了环形太赫兹元传感器。结果表明,与类似装置相比,利用等离子体等离子纳米颗粒集成的环形大分子可获得高达100倍的灵敏度增强。这种方法允许使用环形太赫兹等离子体激元单位细胞检测稀释溶液中的低分子量生物分子(≈13kDa)。

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