Hydrodynamic Insight Drives Multimodal Light_Field Dynamics via Streamline Engineering
Wenxiang Yan, Zheng Yuan, Yuan Gao, Zhaozhong Chen, Zhi-Cheng Ren, Xi-Lin Wang, Jianping Ding, and Hui-Tian Wang

TL;DR
This paper introduces a fluid-inspired model of light dynamics using Poynting-vector streamlines, enabling precise control over structured light propagation for applications like communication and optomechanics.
Contribution
It develops a streamline engineering approach to tailor multimodal light dynamics, unifying various structured light behaviors and demonstrating experimental validation and practical benefits.
Findings
Validated streamline geometries with optical tweezers experiments
Enhanced free-space communication with reduced mode scattering
Achieved customizable multimodal light propagation profiles
Abstract
Since the 1970s, analogies between laser dynamics and fluid systems have provided insight into phenomena such as chaos, multistability, and turbulence. Building on this perspective, we model the optical field as an energy fluid and interpret Poynting-vector trajectories as energy streamlines, yielding a unified, three_dimensional map of light's free-space dynamics. By sculpting these streamlines, we develop an approach to talior vortex-beam propagation dynamics that suppresses both diffraction- and OAM-induced broadening. Extending this method to general structured modes, we enable a single field to exhibit customizable multimodal dynamics that integrate features from primary structured light families: the diffraction-free, self-healing behavior of Bessel beams; the tunable self-similarity of Laguerre-Gaussian beams and adjustable self-acceleration of Airy beams. Additionally, it allows…
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