English

Unveiling spin-orbital angular momentum locking in photonic Dirac vortex cavities

Optics 2026-01-21 v2

Abstract

Dirac vortices, originally studied in quantum field theories to predict localized zero-energy modes, were recently realized in photonics, leading to Dirac vortex cavities. With topological protection, Dirac vortex cavities offer robust single-mode large-area localized modes appealing for high-performance micro-lasers and other applications. As a spectrally-isolated single mode, the radiation of a Dirac vortex cavity mode was believed as having vanishing orbital angular momentum due to time-reversal symmetry. Here, we report the direct observation of orbital angular momentum radiation of a Dirac vortex cavity through spin-resolved measurements. Remarkably, we confirm the spin-orbital angular momentum locking in such radiation due to the spin-valley locking and inter-valley couplings. We demonstrate that the spin-orbital angular momentum locking is controlled by the chirality of the Kekul\'e modulation and propose design schemes for arbitrary-order single-mode OAM radiation.

Keywords

Cite

@article{arxiv.2510.13507,
  title  = {Unveiling spin-orbital angular momentum locking in photonic Dirac vortex cavities},
  author = {Haitao Li and Jiusi Yu and Jiayu Fan and Shijie Kang and Bo Hou and Zhi-Kang Lin and Hanchuan Chen and Jian-Hua Jiang and Xiaoxiao Wu},
  journal= {arXiv preprint arXiv:2510.13507},
  year   = {2026}
}
R2 v1 2026-07-01T06:38:52.196Z