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等离子体纳米结构和纳米电路中光的强自旋轨道相互作用

Strong Spin-Orbit Interaction of Light in Plasmonic Nanostructures and Nanocircuits.

作者信息

Pan Deng, Wei Hong, Gao Long, Xu Hongxing

机构信息

School of Physics and Technology, Wuhan University, Wuhan 430072, China.

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

出版信息

Phys Rev Lett. 2016 Oct 14;117(16):166803. doi: 10.1103/PhysRevLett.117.166803. Epub 2016 Oct 12.

Abstract

The coupling between the spin and orbital degrees of freedom of photons is usually very weak, but recent studies have shown that this spin-orbit interaction (SOI) can be easily detected in metal structures. Here we show how the SOI of light is enhanced in plasmonic metal nanostructures, explore the underlying mechanism for this effect, and further demonstrate how it could potentially be harnessed for nanophotonic applications. Specifically, we show that the scattering of circularly polarized photons by a single metal nanosphere causes light to propagate along sharply twisted chiral trajectories near the nanosphere, thus revealing a strong SOI in the near field of surface plasmons. We find similar spin-dependent trajectories of light induced by a strong SOI also in the near field of surface plasmons generated on the tip of a metal nanowire. We utilize this strong SOI to for the first time experimentally realize spin sorting of photons in a compact plasmonic nanocircuit. The findings offer insights into how the SOI of light can be enhanced and explored for a new degree of freedom in plasmonic nanocircuits and future spin-controlled nanophotonic devices.

摘要

光子的自旋自由度与轨道自由度之间的耦合通常非常微弱,但最近的研究表明,这种自旋轨道相互作用(SOI)在金属结构中很容易被检测到。在此,我们展示了在等离子体金属纳米结构中光的SOI是如何增强的,探究了这种效应的潜在机制,并进一步证明了它如何有可能被用于纳米光子应用。具体而言,我们表明单个金属纳米球对圆偏振光子的散射会使光在纳米球附近沿着急剧扭曲的手性轨迹传播,从而揭示了表面等离子体近场中的强SOI。我们还在金属纳米线尖端产生的表面等离子体近场中发现了由强SOI诱导的类似光的自旋相关轨迹。我们利用这种强SOI首次在紧凑的等离子体纳米电路中通过实验实现了光子的自旋分选。这些发现为如何增强光的SOI以及在等离子体纳米电路和未来的自旋控制纳米光子器件中探索新的自由度提供了见解。

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