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Plasmonic Properties of the Multispot Copper-Capped Nanoparticle Array Chip and Its Application to Optical Biosensors for Pathogen Detection of Multiplex DNAs

机译:多点铜封端的纳米粒子阵列芯片的等离子特性及其在光学生物传感器中用于多重DNA病原体检测的应用。

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A localized surface plasmon resonance (LSPR) - based optical biosensor in connection with a multispot copper-capped nanoparticle array (MC-NPA) chip was proposed and developed. The copper (Cu) films, used as a shell, formed a "cap-like" layer on the top of the silica nanoparticles, used as a core, in an orderly fashion, to form the surface called a "Cu-capped nanoparticle array chip". The plasmonic properties of this nanostructure type were initially investigated while controlling the shell thickness of the deposited Cu. Also, we quantified the sensitivity of MC-NPA chip to changes in bulk refractive index (RI). As a result of its LSPR properties, the MC-NPA chip displayed a sensitivity of 67.8 nm per RI unit, and the wavelength shift of the LSPR spectrum peak was sensitive to the RI of the surrounding bulk medium, such as the biomolecular layers. Using MC-NPA chips, multiplex sensing of target DNAs from reference bacteria and clinical samples was possible in a quantitative manner with a detection limit of 10 fM (50 zmol). The optical biosensor developed in this study represents a unique approach to performing LSPR that utilizes a simple and cost-effective optical setup with disposable chips.
机译:提出并开发了一种基于局部表面等离子体激元共振(LSPR)的光学生物传感器,该传感器与多点覆铜纳米颗粒阵列(MC-NPA)芯片有关。用作外壳的铜(Cu)膜在用作核心的二氧化硅纳米颗粒的顶部按顺序形成了“帽状”层,以形成称为“ Cu封端的纳米颗粒阵列”的表面芯片”。最初研究了这种纳米结构类型的等离子体性能,同时控制了沉积铜的壳厚度。此外,我们量化了MC-NPA芯片对整体折射率(RI)变化的敏感性。由于其LSPR特性,MC-NPA芯片的每个RI单元显示出67.8 nm的灵敏度,并且LSPR光谱峰的波长漂移对周围的大容量介质(如生物分子层)的RI敏感。使用MC-NPA芯片,可以定量检测参考细菌和临床样品中的目标DNA,检测限为10 fM(50 zmol)。这项研究中开发的光学生物传感器代表了执行LSPR的独特方法,该方法利用简单且具有成本效益的光学装置和一次性芯片。

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