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通过光子局域化显微镜实现纳米尺度等离子体场分布的非扰可视化。

Nonperturbative visualization of nanoscale plasmonic field distributions via photon localization microscopy.

机构信息

Molecular Foundry, Lawrence Berkeley National Lab, Berkeley, California 94720, USA.

出版信息

Phys Rev Lett. 2011 Jan 21;106(3):037402. doi: 10.1103/PhysRevLett.106.037402. Epub 2011 Jan 18.

Abstract

We demonstrate the nonperturbative use of diffraction-limited optics and photon localization microscopy to visualize the controlled nanoscale shifts of zeptoliter mode volumes within plasmonic nanostructures. Unlike tip- or coating-based methods for mapping near fields, these measurements do not affect the electromagnetic properties of the structure being investigated. We quantify the local field manipulation capabilities of asymmetric bowtie antennas, in agreement with theoretical calculations. The photon-limited localization accuracy of nanoscale mode positions is determined for many of the measured devices to be within a 95% confidence interval of +/-2.5 nm. This accuracy also enables us to characterize the effects of nm-scale fabrication irregularities on local plasmonic mode distributions.

摘要

我们展示了使用无衍射限制光学和光子局域显微镜来可视化控制的皮升级模式体积在等离子体纳米结构中的纳米级移动。与基于尖端或涂层的近场映射方法不同,这些测量不会影响正在研究的结构的电磁特性。我们定量地测量了非对称蝴蝶结天线的局部场操控能力,这与理论计算结果一致。对于许多测量设备,纳米级模式位置的光子限制定位精度在 95%置信区间内为 +/-2.5nm。这种精度还使我们能够分析纳米级制造不规则性对局部等离子体模式分布的影响。

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