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亚波长螺旋金属等离子体超透镜的离轴聚焦

Metafocusing by a Metaspiral Plasmonic Lens.

机构信息

Department of Electrical Engineering, Technion, Israel Institute of Technology , 32000 Haifa, Israel.

出版信息

Nano Lett. 2015 Sep 9;15(9):5739-43. doi: 10.1021/acs.nanolett.5b01571. Epub 2015 Aug 11.

Abstract

We designed and realized a metasurface (manipulating the local geometry) spiral (manipulating the global geometry) plasmonic lens, which fundamentally overcomes the multiple efficiency and functionality challenges of conventional in-plane plasmonic lenses. The combination of spirality and metasurface achieves much more efficient and uniform linear-polarization-independent plasmonic focusing. As for functionality, under matched circularly polarized illumination the lens directs all of the power coupled to surface plasmon polaritons (SPPs) into the focal spot, while the orthogonal polarization excites only diverging SPPs that do not penetrate the interior of the lens, achieving 2 orders of magnitude intensity contrast throughout the entire area of the lens. This optimal functional focusing is clearly demonstrated by near-field optical microscopy measurements that are in excellent agreement with simulations and are supported by a detailed theoretical interpretation of the underlying mechanisms. Our results advance the field of plasmonics toward functional detection and the employment of SPPs in smart pixels, near-field microscopy, lithography, and particle manipulation.

摘要

我们设计并实现了一种亚表面(操控局部几何形状)螺旋(操控全局几何形状)等离子体透镜,从根本上克服了传统面内等离子体透镜的多重效率和功能挑战。螺旋和亚表面的结合实现了更高效、更均匀的线偏振无关的等离子体聚焦。至于功能方面,在匹配的圆偏振光照明下,透镜将所有耦合到表面等离激元(SPP)的功率引导到焦点,而正交偏振仅激发不会穿透透镜内部的发散 SPP,在整个透镜区域实现了 2 个数量级的强度对比度。通过近场光学显微镜测量,明显证明了这种最佳的功能聚焦,这些测量结果与模拟结果非常吻合,并得到了对基础机制的详细理论解释的支持。我们的研究结果推动了等离子体学领域朝着功能检测以及在智能像素、近场显微镜、光刻和粒子操控中应用 SPP 的方向发展。

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