English

Decoupled phase modulation for circularly polarized lights via chiral metasurface

Optics 2022-02-22 v1

Abstract

Metasurfaces are believed as one of the best candidates in nano-optical devices, attributed to the key feasible modulation features of phase, polarization, and local field enhancement by structural designing. However, current methods of propagation- and geometric-phase modulation are interrelated between two eigen spin-states. This means that when the left-handed component phase of a beam is modulated by metasurfaces, its right-handed component phase will change accordingly, which limits the versatility of spin-decoupled applications. In this paper, we experimentally and numerically demonstrate a new phase modulation pathway based on chiral V-shaped holes, which enable fully decoupled one-handed phase modulation of the two eigen spin-states. Two enantiomers are proposed to realize decoupled functions for the two eign-states, e.g., the enantiomer can manipulate the left-handed component phase of a laser beam without changes of the right-handed component. This proposed method has significant meaning in metasurfaces, which can expand the methods of phase engineering.

Keywords

Cite

@article{arxiv.2202.10193,
  title  = {Decoupled phase modulation for circularly polarized lights via chiral metasurface},
  author = {Renchao Jin and Lin Deng and Lili Tang and Yue Cao and Yongmin Liu and Zheng-Gao Dong},
  journal= {arXiv preprint arXiv:2202.10193},
  year   = {2022}
}
R2 v1 2026-06-24T09:47:41.711Z