English

Dynamic realization of emergent high-dimensional optical vortices

Optics 2025-01-06 v1 Mesoscale and Nanoscale Physics

Abstract

The dimensionality of vortical structures has recently been extended beyond two dimensions, providing higher-order topological characteristics and robustness for high-capacity information processing and turbulence control. The generation of high-dimensional vortical structures has mostly been demonstrated in classical systems through the complex interference of fluidic, acoustic, or electromagnetic waves. However, natural materials rarely support three- or higher-dimensional vortical structures and their physical interactions. Here, we present a high-dimensional gradient thickness optical cavity (GTOC) in which the optical coupling of planar metal-dielectric multilayers implements topological interactions across multiple dimensions. Topological interactions in high-dimensional GTOC construct non-trivial topological phases, which induce high-dimensional vortical structures in generalized parameter space in three, four dimensions, and beyond. These emergent high-dimensional vortical structures are observed under electro-optic tomography as optical vortex dynamics in two-dimensional real-space, employing the optical thicknesses of the dielectric layers as synthetic dimensions. We experimentally demonstrate emergent vortical structures, optical vortex lines and vortex rings, in a three-dimensional generalized parameter space and their topological transitions. Furthermore, we explore four-dimensional vortical structures, termed optical vortex sheets, which provide the programmability of real-space optical vortex dynamics. Our findings hold significant promise for emulating high-dimensional physics and developing active topological photonic devices.

Keywords

Cite

@article{arxiv.2501.01550,
  title  = {Dynamic realization of emergent high-dimensional optical vortices},
  author = {Dongha Kim and Geonhyeong Park and Yun-Seok Choi and Arthur Baucour and Jisung Hwang and Sanghyeok Park and Hee Seong Yun and Jonghwa Shin and Haiwen Wang and Shanhui Fan and Dong Ki Yoon and Min-Kyo Seo},
  journal= {arXiv preprint arXiv:2501.01550},
  year   = {2025}
}

Comments

21 pages,5 figures

R2 v1 2026-06-28T20:55:04.104Z