English

Encoding orbital angular momentum of light in space with optical catastrophes

Optics 2025-11-04 v1

Abstract

Light beams carrying orbital angular momentum (OAM) possess an unbounded set of orthogonal modes, offering significant potential for optical communication and security. However, exploiting OAM beams in space has been hindered by the lack of a versatile design toolkit. Here, we demonstrate a strategy to tailor OAM across multiple transverse planes by shaping optical caustics leveraging on catastrophe theory. With complex-amplitude metasurfaces fabricated using two-photon polymerization lithography, we construct these caustics to steer Poynting vectors and achieve arbitrary shapes of OAM beams. Interestingly, we use such an approach to realize hidden OAM along the propagation trajectory, where the intensity of the beam is spread out thus avoiding detection. The OAM of these beams can be intrinsic, which avoids OAM distortions arising from the mixing of intrinsic and extrinsic components. By exploiting this intrinsic nature of OAM, we demonstrate the detection of encoded information in optical encryption. Our approach provides a unique framework for dynamic control of OAM in space, with promising applications in optical trapping and sensing, high-capacity data storage, and optical information security.

Keywords

Cite

@article{arxiv.2511.00871,
  title  = {Encoding orbital angular momentum of light in space with optical catastrophes},
  author = {Xiaoyan Zhou and John You En Chan and Chia-Te Chang and Zhenchao Liu and Wang Hao and Andrew Forbes and Cheng-Wei Qiu and Hongtao Wang and Joel K. W. Yang},
  journal= {arXiv preprint arXiv:2511.00871},
  year   = {2025}
}