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用于纳米级光学聚焦的压缩表面等离子体激元。

Compressing surface plasmons for nano-scale optical focusing.

作者信息

Choi Hyeunseok, Pile David F, Nam Sunghyun, Bartal Guy, Zhang Xiang

机构信息

NSF Nano-scale Science and Engineering Center, University of California, Berkeley, CA 94720, USA.

出版信息

Opt Express. 2009 Apr 27;17(9):7519-24. doi: 10.1364/oe.17.007519.

Abstract

A major challenge in optics is how to deliver and concentrate light from the micron-scale into the nano-scale. Light can not be guided, by conventional mechanisms, with optical beam sizes significantly smaller than its wavelength due to the diffraction limit. On the other hand, focusing of light into very small volumes beyond the diffraction limit can be achieved by exploiting the wavelength scalability of surface plasmon polaritons. By slowing down an optical wave and shrinking its wavelength during its propagation, optical energy can be compressed and concentrated down to nanometer scale, namely, nanofocusing. Here, we experimentally demonstrate and quantitatively measure the nanofocusing of surface plasmon polaritons in tapered metallic V-grooves down to the deep subwavelength scale - approximately lambda/40 at wavelength of 1.5 micron - with almost 50% power efficiency.

摘要

光学领域的一个主要挑战是如何将微米级的光传输并聚焦到纳米级。由于衍射极限,传统机制无法引导光束尺寸显著小于其波长的光。另一方面,通过利用表面等离激元极化子的波长可扩展性,可以实现超越衍射极限将光聚焦到非常小的体积中。通过在光波传播过程中减慢其速度并缩小其波长,光能可以被压缩并集中到纳米尺度,即纳米聚焦。在此,我们通过实验证明并定量测量了锥形金属V形槽中表面等离激元极化子的纳米聚焦,聚焦至深亚波长尺度——在1.5微米波长下约为λ/40——功率效率几乎达到50%。

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