Plasmonic metasurfaces manipulating the two spin components from spin–orbit interactions of light with lattice field generations

Author:

Zhang Ruirui12ORCID,Gu Manna1,Sun Rui1,Zeng Xiangyu1ORCID,Zhang Yuqin13,Zhang Yu1,Cheng Chen1,Zhan Zijun1,Chen Chao1,Ren Xiaorong14,He Changwei13,Liu Chunxiang1,Cheng Chuanfu1

Affiliation:

1. College of Physics and Electronics, Shandong Normal University , Jinan , 250014 , China

2. School of Computer Science and Technology, Shandong University of Finance and Economics , Jinan , 250014 , China

3. School of Science, Shandong Jianzhu University , Jinan , 250101 , China

4. School of Electronic and Information Engineering, Qilu University of Technology (Shandong Academy of Sciences) , Jinan , 250353 , China

Abstract

Abstract Artificial nanostructures in metasurfaces induce strong spin–orbit interactions (SOIs), by which incident circularly polarized light can be transformed into two opposite spin components. The component with an opposite helicity to the incident light acquires a geometric phase and is used to realize the versatile functions of the metasurfaces; however, the other component, with an identical helicity, is often neglected as a diffused background. Here, by simultaneously manipulating the two spin components originating from the SOI in plasmonic metasurfaces, independent wavefields in the primary and converted spin channels are achieved; the wavefield in the primary channel is controlled by tailoring the dynamic phase, and that in the converted channel is regulated by designing the Pancharatnam–Berry phase in concurrence with the dynamic phase. The scheme is realized by generating optical lattice fields with different topologies in two spin channels, with the metasurfaces composed of metal nanoslits within six round-apertures mimicking the multi-beam interference. This study demonstrates independent optical fields in a dual-spin channel based on the SOI effect in the metasurface, which provides a higher polarization degree of freedom to modify optical properties at the subwavelength scale.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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