Probing Internal Dynamics of Spatiotemporal Optical Vortex Strings: Spatiotemporal Attraction and Filament Stretching

ABSTRACT Vortex dynamics are intriguing and challenging across multiple physics fields. In optics, customized spatiotemporally structured optical fields, especially spatiotemporal optical vortices (STOV), offer the potential to tailor light via coupled space‐time degrees of freedom. However, the interaction mechanisms between multiple transverse orbital angular momentum singularities within a single wave packet remain elusive. This study explores the dynamics of a STOV with three phase singularities, observing a pronounced vortex singularity oscillation phenomena by tuning the dispersion. We show that these phenomena originate from the counterintuitive spatiotemporal attractive effect between vortices, which is related to the singularity distance. Furthermore, the stretching into filaments and annihilation is observed by introducing an antivortex in the center of the wavepacket. Experimentally, we propose a Full Interferometric Retrieval of Spatiotemporal Tomography (FIRST) method that enables the single‐shot capture of wave packets, with excellent agreement between theoretical predictions and experimental results. To the best of our knowledge, the dynamics of transverse spatiotemporal singularities within a single wave packet are reported here for the first time. These findings confirm the existence of interesting interactions between STOV singularities, deepen our understanding of photonics and open a new direction for investigating the complex dynamics of vortex singularities in the spatiotemporal domain.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-09-18
DOI
https://doi.org/10.1002/lpor.71918
Primary Topic
Orbital Angular Momentum in Optics
Type
article
Field-Weighted Citation Impact
0.00

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article

Probing Internal Dynamics of Spatiotemporal Optical Vortex Strings: Spatiotemporal Attraction and Filament Stretching

Dongjun Zhang, Zezhao Gong, Meizhi Sun, Xiuyu Yao et al.
Laser & Photonics Review
Orbital Angular Momentum in Optics
article

Probing Internal Dynamics of Spatiotemporal Optical Vortex Strings: Spatiotemporal Attraction and Filament Stretching

Dongjun Zhang, Zezhao Gong, Meizhi Sun, Xiuyu Yao, Jintao Fan, Jingwen Ran, Xuechen Gao, Minglie Hu, Ping Zhu, Qiang Zhang, Xiao Liang, Hailun Zeng, Xinglong Xie, Lijie Cui, Xuejie Zhang, Jianqiang Zhu
article en

Abstract

ABSTRACT Vortex dynamics are intriguing and challenging across multiple physics fields. In optics, customized spatiotemporally structured optical fields, especially spatiotemporal optical vortices (STOV), offer the potential to tailor light via coupled space‐time degrees of freedom. However, the interaction mechanisms between multiple transverse orbital angular momentum singularities within a single wave packet remain elusive. This study explores the dynamics of a STOV with three phase singularities, observing a pronounced vortex singularity oscillation phenomena by tuning the dispersion. We show that these phenomena originate from the counterintuitive spatiotemporal attractive effect between vortices, which is related to the singularity distance. Furthermore, the stretching into filaments and annihilation is observed by introducing an antivortex in the center of the wavepacket. Experimentally, we propose a Full Interferometric Retrieval of Spatiotemporal Tomography (FIRST) method that enables the single‐shot capture of wave packets, with excellent agreement between theoretical predictions and experimental results. To the best of our knowledge, the dynamics of transverse spatiotemporal singularities within a single wave packet are reported here for the first time. These findings confirm the existence of interesting interactions between STOV singularities, deepen our understanding of photonics and open a new direction for investigating the complex dynamics of vortex singularities in the spatiotemporal domain.

Laser & Photonics Review
Tianjin University (CN), Shanghai Institute of Optics and Fine Mechanics (CN), University of Chinese Academy of Sciences (CN), Chongqing University of Technology (CN)
Ministry of Science and Technology, National Natural Science Foundation of China, Chinese Academy of Sciences, Science and Technology Commission of Shanghai Municipality
Peace, Justice and strong institutions
Openalex Percentile: Top 86%
Orbital Angular Momentum in Optics
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