Spin-Orbit-Locking Vectorial Metasurface Holography

  • Zhipeng Yu
  • , Xinyue Gao
  • , Jing Yao
  • , Haoran Li
  • , Yuzhi Shi
  • , Bo Li
  • , Zhenwei Xie
  • , Xiaocong Yuan (Corresponding Author)
  • , Puxiang Lai (Corresponding Author)
  • , Qinghua Song

Research output: Journal article publicationJournal articleAcademic researchpeer-review

23 Citations (Scopus)

Abstract

Vectorial metasurface holography, allowing for independent control over the amplitude, phase, and polarization distribution of holographic images enabled by metasurfaces, plays a crucial role in the realm of optical display, optical, and quantum communications. However, previous research on vectorial metasurface holography has typically been restricted to single degree of freedom input and single channel output, thereby demonstrating a very limited modulation capacity. This work presents a novel method to achieve multi-channel vectorial metasurface holography by harnessing spin-orbit-locking vortex beams. In each channel, the optical vectorial field is encoded with a pair of total angular momentums (TAMs) featuring two orthogonal spin angular momentums (SAMs) independently locked with arbitrary orbital angular momentums (OAMs). The methodology relies on a modified Gerchberg-Saxton algorithm, enabling the encoding of various TAM channels within a single phase profile. Consequently, a pure geometry-phase metasurface with a non-interleaved approach can be used to support such multi-channel vectorial holography, achieving high selectivity of both SAM and OAM, and offering precise routing and manipulation of complex light channels. The work presents a paradigm shift in the field of holography, offering promising avenues for high-density optical information processing and future photonic device design.

Original languageEnglish
Article number2415142
JournalAdvanced Materials
Volume37
Issue number9
DOIs
Publication statusPublished - 5 Mar 2025

Keywords

  • geometry phase
  • metasurface
  • orbital angular momentum
  • spin-orbit-locking
  • total angular momentum
  • vectorial holography

ASJC Scopus subject areas

  • General Materials Science
  • Mechanics of Materials
  • Mechanical Engineering

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