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Dielectric functionalization for differential phase detecting localized surface plasmon resonance biosensor

机译:介电功能化用于差分相位检测局部表面等离子体共振生物传感器

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摘要

In this paper, a novel dielectric functionalization approach is introduced for differential phase detecting localized surface plasmon resonance (LSPR) immunoassay biosensor, which exhibits high sensitivity. The plasmonic "hot spots" at the nanoscale dielectric gaps among self-assembly gold nanoislands were first functionalized. These "hot spots" are believed to be highly sensitive to localized refractive index change and the phase response induced by the binding event at these functionalized "hot spots" is monitored by our common-path spectral interferometer during biosensing. Its performance was compared with that from conventional gold functionalization protocol. It was found that the dielectric functionalization approach attained limit of detection of the same order as that from conventional gold functionalization, i.e. 1 pM of human IgG antigen. The novel protocol was also applied to detection of the antigen in serum samples. To our knowledge, these are two orders of magnitude improvement over existing label-free SPR biosensors. In view of the myriad of emerging plasmonic materials in the foreseeable future, the dielectric functionalization approach would provide a convenient protocol for label-free LSPR biosensing, as it would be generally applicable to any plasmonic material on glass substrate.
机译:本文介绍了一种新颖的介电功能化方法,用于差分相检测局域表面等离子体共振(LSPR)免疫测定生物传感器,具有很高的灵敏度。自组装金纳米岛之间的纳米级介电间隙的等离激元“热点”首先被功能化。这些“热点”被认为对局部折射率变化高度敏感,在生物传感过程中,由我们的共径谱干涉仪监测了在这些功能化“热点”处的结合事件所诱导的相位响应。将其性能与常规金功能化协议的性能进行了比较。发现介电功能化方法达到了与常规金功能化相同的检测极限,即1pM的人IgG抗原。该新方案还应用于血清样品中抗原的检测。据我们所知,与现有的无标记SPR生物传感器相比,这有两个数量级的改进。鉴于在可预见的将来有无数新兴的等离激元材料,介电功能化方法将为无标记LSPR生物传感提供便利的协议,因为它通常适用于玻璃基板上的任何等离激元材料。

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