High-efficiency plasmonic vortex generation with near-infrared bifunctional metasurfaces

Author:

Chen Yizhen1,Zheng Xiaoying,Liu Feifei2,Pan Weikang1,Wang Zhuo,Liu Muhan1,Zhu Zhiyan1,Wang Yingying1,Li Liangwei1,He Qiong3ORCID,Sun Shulin1ORCID,Zhou Lei3

Affiliation:

1. Yiwu Research Institute of Fudan University

2. Tianjin Normal University

3. Collaborative Innovation Center of Advanced Microstructures

Abstract

Plasmonic vortices have shown a wide range of applications in on-chip photonics due to their fascinating properties of the orbital angular momenta (OAM) and phase singularity. However, conventional devices to generate them suffer from issues of low efficiencies and limited functionalities. Here, we establish a systematic scheme to construct high-efficiency bifunctional metasurfaces that can generate two plasmonic vortices exhibiting distinct topological charges, based on a series of reflective meta-atoms exhibiting tailored reflection-phases dictated by both resonant and geometric origins. As a benchmark test, we first construct a meta-coupler with meta-atoms exhibiting geometric phases only, and experimentally demonstrate that it can generate a pre-designed plasmonic vortex at the wavelength of 1064 nm with an efficiency of 27% (56% in simulation). Next, we design/fabricate two bifunctional metasurfaces with meta-atoms integrated with both resonant and geometric phases, and experimentally demonstrate that they can generate divergent (or focused) or convergent (or defocused) plasmonic vortices with district OAM as shined by circularly polarized light with opposite helicity at 1064 nm wavelength. Our work provides an efficient platform to generate plasmonic vortices as desired, which can find many applications in on-chip photonics.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Open project of State Key Laboratory of Applied Surface Physics, Fudan University

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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