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Dislocated Moiré-Type Pancharatnam–Berry Phase Elements Enabling the Tunable Photonic Spin Hall Effect

  • LI YANKE
  • , CHEN ZHIMIN
  • , ZOU YU
  • , ZHOU CHENGXIN
  • , LIU YUFANG
  • , ZHAO JIANLIN
  • , LI PENG
  • , ZHANG JUN
  • , LIU SHENG
  • , YU KUN
  • Henan Normal University
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

Pancharatnam–Berry (PB) phase elements have garnered significant attention for their spin-dependent phase manipulation capabilities. This study proposes a dislocated moiré-type PB phase element (DMPBPE), which enables dynamic tuning of the PB phase through translational dislocation between two PB phase units. A DMPBPE designed to generate a conical PB phase is fabricated and experimentally characterized, producing a radial frequency of 10π∕mm with a dislocation of 0.2 mm. Functional validation demonstrates that the DMPBPE can induce a dislocation-dependent photonic spin Hall effect (PSHE) in Bessel-like beams with nonlinear trajectories, enabling a tunable progressive or stabilized PSHE. Furthermore, by combining the DMPBPE with beam trajectory engineering, we realize a programmable three-dimensional “PSHE clock.” The element is also applied to optical edge detection, enabling simultaneous control over edge orientation and width. These results establish dislocation as a new degree of freedom for spin-optical manipulation, offering promising prospects for tunable spin-dependent photonic devices.

Original languageEnglish
Pages (from-to)2573-2581
Number of pages9
JournalPhotonics Research
Volume14
Issue number6
DOIs
StatePublished - 22 May 2026

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