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磁表面等离子体激元和电表面等离子体激元的激发与操控。

Excitation and manipulation of both magnetic and electric surface plasmons.

作者信息

Peng Ruiguang, Zhao Qian, Meng Yonggang, Wen Shizhu

出版信息

Opt Express. 2022 Mar 14;30(6):9841-9853. doi: 10.1364/OE.452595.

Abstract

Surface plasmons (SPs) is the cornerstone in terahertz (THz) near-field photonics, which play crucial roles in the miniaturization and integration of functional devices. The excitation and manipulation of SPs, however, is currently restricted to electric SPs paradigm, while magnetic SPs receive less attention despite the importance of magnetic light-matter interactions. Here, a scheme is proposed to simultaneously convert the propagating waves in free space into magnetic and electric SPs using a single ultracompact device. First, a plasmonic structure composed of connected slit rings is designed and demonstrated to support both electric and magnetic SPs, which is ascribed to the two distinct eigenmodes of oscillating electrons and vortex currents, respectively. Second, with the assistance of an anisotropic and gradient metasurface, orthogonal linear polarized components of incident THz beams are coupled into different electric and magnetic SP channels with little crosstalk. Furthermore, by encoding two distinct polarization-dependent phase profile into the metasurface, it is shown that the resulting meta-device can individually tailor the wavefronts of magnetic and electric SPs, thus simultaneously engineering magnetic and electric near-field distributions. This work can pave the road to realize bi-channel and on-chip devices, and inspire more integrated functionalities especially related to near-field manipulations of magnetic SPs.

摘要

表面等离子体激元(SPs)是太赫兹(THz)近场光子学的基石,在功能器件的小型化和集成中起着关键作用。然而,目前对SPs的激发和操控仅限于电表面等离子体激元范式,尽管磁光物质相互作用很重要,但磁表面等离子体激元却较少受到关注。在此,提出了一种方案,利用单个超紧凑器件将自由空间中的传播波同时转换为磁表面等离子体激元和电表面等离子体激元。首先,设计并展示了一种由相连的狭缝环组成的等离子体结构,该结构分别归因于振荡电子和涡旋电流的两种不同本征模式,能够支持磁表面等离子体激元和电表面等离子体激元。其次,在各向异性和梯度超表面的辅助下,入射太赫兹光束的正交线性偏振分量被耦合到不同的电表面等离子体激元和磁表面等离子体激元通道,且串扰很小。此外,通过将两种不同的偏振相关相位分布编码到超表面中,结果表明所得的超器件可以分别调整磁表面等离子体激元和电表面等离子体激元的波前,从而同时设计磁近场和电近场分布。这项工作可为实现双通道和片上器件铺平道路,并激发更多特别是与磁表面等离子体激元近场操控相关的集成功能。

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