High efficiency spin-decoupled modulation using chiral C2-symmetric meta-atoms
Haohan Chen, Jiepeng Wu, Minglei He, Hao Wang, Xinen Wu, Kezhou Fan,, Haiying Liu, Qiang Li, Lijun Wu, Kam Sing Wong

TL;DR
This paper introduces a high-efficiency, spin-decoupled metasurface design using chiral C2-symmetric meta-atoms, enhancing multiplexing capabilities and signal quality through innovative phase control techniques.
Contribution
It demonstrates a novel approach combining chiral meta-atoms and Pancharatnam-Berry phase for improved spin-decoupled metasurface performance.
Findings
Chiral C2-symmetric meta-atoms offer larger phase control range.
Achieved full 2π phase span with high efficiency.
Designed polarization-insensitive metalens and chiral metasurface arrays.
Abstract
Orthogonal circularly polarized light is essential for multiplexing tunable metasurfaces. Mainstream spin-decoupled metasurfaces, consisting of numerous meta-atoms with mirror symmetry, rely on the cooperative modulation of the Pancharatnam-Berry (PB) phase and the propagation phase. This paper demonstrates spin-decoupled functionality through the synergistic utilization of planar chiral meta-atom phase response and PB phase. Based on the Jones calculus, it has been found that meta-atoms with chiral C2-symmetry owns a larger geometric parameter range with high cross-polarization ratio compared to those with mirror symmetry or higher symmetries at the same aspect ratio. This characteristic is advantageous in terms of enabling high-efficiency manipulation and enhancing the signal-to-noise ratio. As an example, 10 kinds of C2-symmetry chiral meta-atoms with a H-like shape are selected by…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Orbital Angular Momentum in Optics · Advanced Antenna and Metasurface Technologies
