High‐Efficiency Metasurface‐Based Surface‐Plasmon Lenses

Author:

Liu Feifei12ORCID,Wang Dongyi2,Zhu Han2,Zhang Xiyue2,Liu Tong2,Sun Shulin3,Zhang Xinping4,He Qiong2,Zhou Lei2

Affiliation:

1. College Physics and Materials Science Tianjin Normal University Tianjin 300387 P. R. China

2. State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 P. R. China

3. Shanghai Engineering Research Centre of Ultra Precision Optical Manufacturing Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 P. R. China

4. Institute of Information Photonics Technology and College of Applied Sciences Beijing University of Technology Beijing 100124 P. R. China

Abstract

AbstractA device that can couple propagating light into surface plasmon polaritons (SPPs) focused into a small region is highly desired for on‐chip photonics applications (e.g., energy‐harvesting, sensing, etc.). However, current technologies suffer from large device footprint, low working efficiency, and insufficient light‐manipulation freedom. Here, a generic approach for designing plasmonic lenses to generate predesigned vector SPP vortices with high efficiencies is established. Constructed with a set of meta‐atoms exhibiting tailored reflection phases and polarization‐conversion capabilities, the devices can convert normally incident circularly polarized light into predesigned vector SPP vortices with high efficiencies, due to both phase and polarization matching. As the illustrations, this study experimentally demonstrates directional SPP conversion (coupling efficiency: 35%; utilization efficiency: 98%) and SPP focusing effect at the wavelength of 1064 nm, with two meta‐couplers in stripe and arc shapes, respectively. Finally, a ring‐shaped meta‐coupler is designed/fabricated, and the generation of a vector SPP vortex with significantly enhanced efficiency as compared to previous schemes is experimentally demonstrated. The results pave the way for realizing on‐chip plasmonic devices to efficiently utilize SPPs with minimal footprints.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Shanghai

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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