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用于偏振控制多光谱纳米聚焦的光子-等离子体耦合纳米天线。

Photonic-plasmonic-coupled nanoantennas for polarization-controlled multispectral nanofocusing.

出版信息

Opt Lett. 2013 Nov 15;38(22):4861-3. doi: 10.1364/OL.38.004861.

Abstract

We report on the design and experimental demonstration of array-enhanced nanoantennas for polarization-controlled multispectral nanofocusing in the near-IR spectral range. We design plasmonic double bow-tie nanoantennas-coupled to multiple-periodic nanoparticle arrays to harvest radiation of designed wavelengths from a large spatial area and to focus it into a targeted nanoscale region. Near-field calculations were performed on a gold nanoantenna array using three-dimensional finite difference time domain simulations. Cross-shaped optical nanoantennas were fabricated on glass substrates using electron beam lithography. The optical characterization of the fabricated nanoantennas was performed using second harmonic excitation spectroscopy that demonstrates multiwavelength photonic coupling in good agreement with the antenna modeling. The nanoantenna structures introduced in this Letter provide the ability to focus optical energy into deep subwavelength areas and to address multiple spectral regions with polarization control. Such attributes are highly desirable in optical biosensing, enhanced Raman scattering, and for nonlinear plasmonic applications.

摘要

我们报告了一种设计方案,并通过实验演示了用于近红外光谱范围内偏振控制多光谱纳米聚焦的阵列增强纳米天线。我们设计了等离子体双蝴蝶结纳米天线,与多周期纳米粒子阵列耦合,从大的空间区域收集设计波长的辐射,并将其聚焦到目标纳米级区域。使用三维有限差分时域模拟对金纳米天线阵列进行了近场计算。使用电子束光刻在玻璃衬底上制造了十字形光学纳米天线。使用二次谐波激发光谱法对所制造的纳米天线进行了光学特性表征,该方法很好地证明了与天线建模一致的多波长光子耦合。本文中引入的纳米天线结构提供了将光学能量聚焦到深亚波长区域的能力,并具有偏振控制的多个光谱区域。这些特性在光学生物传感、增强拉曼散射以及非线性等离子体应用中非常理想。

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