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用于表面等离子体共振传感的窄槽等离子体纳米光栅

Narrow groove plasmonic nano-gratings for surface plasmon resonance sensing.

作者信息

Dhawan Anuj, Canva Michael, Vo-Dinh Tuan

机构信息

Department of Biomedical Engineering, Duke University, Durham, NC 27708, USA.

出版信息

Opt Express. 2011 Jan 17;19(2):787-813. doi: 10.1364/OE.19.000787.

Abstract

We present a novel surface plasmon resonance (SPR) configuration based on narrow groove (sub-15 nm) plasmonic nano-gratings such that normally incident radiation can be coupled into surface plasmons without the use of prism-coupling based total internal reflection, as in the classical Kretschmann configuration. This eliminates the angular dependence requirements of SPR-based sensing and allows development of robust miniaturized SPR sensors. Simulations based on Rigorous Coupled Wave Analysis (RCWA) were carried out to numerically calculate the reflectance - from different gold and silver nano-grating structures - as a function of the localized refractive index of the media around the SPR nano-gratings as well as the incident radiation wavelength and angle of incidence. Our calculations indicate substantially higher differential reflectance signals, on localized change of refractive index in the narrow groove plasmonic gratings, as compared to those obtained from conventional SPR-based sensing systems. Furthermore, these calculations allow determination of the optimal nano-grating geometric parameters - i. e. nanoline periodicity, spacing between the nanolines, as well as the height of the nanolines in the nano-grating - for highest sensitivity to localized change of refractive index, as would occur due to binding of a biomolecule target to a functionalized nano-grating surface.

摘要

我们展示了一种基于窄槽(亚15纳米)等离子体纳米光栅的新型表面等离子体共振(SPR)配置,使得垂直入射辐射能够耦合到表面等离子体中,而无需像传统的克雷奇曼配置那样使用基于棱镜耦合的全内反射。这消除了基于SPR传感的角度依赖性要求,并允许开发坚固的小型化SPR传感器。基于严格耦合波分析(RCWA)进行了模拟,以数值计算来自不同金和银纳米光栅结构的反射率,作为SPR纳米光栅周围介质的局部折射率以及入射辐射波长和入射角的函数。我们的计算表明,与从传统的基于SPR的传感系统获得的信号相比,窄槽等离子体光栅中局部折射率变化时的差分反射率信号要高得多。此外,这些计算允许确定最佳的纳米光栅几何参数,即纳米线周期、纳米线之间的间距以及纳米光栅中纳米线的高度,以实现对局部折射率变化的最高灵敏度,这种变化可能是由于生物分子靶标与功能化纳米光栅表面结合而产生的。

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