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Hauptverfasser: Zhang, Shuoshuo, Zhou, Zhangyu, Man, Zhongsheng, Ni, Jielei, Min, Changjun, Zhang, Yuquan, Yuan, Xiaocong
Format: Preprint
Veröffentlicht: 2025
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Online-Zugang:https://arxiv.org/abs/2501.10055
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author Zhang, Shuoshuo
Zhou, Zhangyu
Man, Zhongsheng
Ni, Jielei
Min, Changjun
Zhang, Yuquan
Yuan, Xiaocong
author_facet Zhang, Shuoshuo
Zhou, Zhangyu
Man, Zhongsheng
Ni, Jielei
Min, Changjun
Zhang, Yuquan
Yuan, Xiaocong
contents Spatiotemporal optical vortices (STOVs), as a kind of structured light pulses carrying transverse orbital angular momentum (OAM), have recently attracted significant research interest due to their unique photonic properties. However, general STOV pulses typically exhibit an annular intensity profile in the spatiotemporal plane, with a radius that scales with the topological charge, limiting their potential in many applications. Here, to address this limitation, we introduce the concept of perfect spatiotemporal optical vortices (PSTOVs). Unlike STOV pulses, the intensity distribution of PSTOV wavepackets is nearly independent of the topological charge. We show that such wavepackets can be generated by applying the spatiotemporal Fourier transform to a Bessel-Gaussian mode in the spatiotemporal frequency domain. More importantly, the mode distribution of PSTOV wavepackets can be freely controlled by introducing azimuthal-dependent phase modulation, enabling conversion from a standard annular profile to arbitrary polygonal shapes. Finally, experimental results confirm the successful generation of these wavepackets. Our findings will expand the study of STOV pulses and explore their potential applications in optical communications, information processing, topological photonics, and ultrafast control of light-matter interactions.
format Preprint
id arxiv_https___arxiv_org_abs_2501_10055
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Controllable perfect spatiotemporal optical vortices
Zhang, Shuoshuo
Zhou, Zhangyu
Man, Zhongsheng
Ni, Jielei
Min, Changjun
Zhang, Yuquan
Yuan, Xiaocong
Optics
Spatiotemporal optical vortices (STOVs), as a kind of structured light pulses carrying transverse orbital angular momentum (OAM), have recently attracted significant research interest due to their unique photonic properties. However, general STOV pulses typically exhibit an annular intensity profile in the spatiotemporal plane, with a radius that scales with the topological charge, limiting their potential in many applications. Here, to address this limitation, we introduce the concept of perfect spatiotemporal optical vortices (PSTOVs). Unlike STOV pulses, the intensity distribution of PSTOV wavepackets is nearly independent of the topological charge. We show that such wavepackets can be generated by applying the spatiotemporal Fourier transform to a Bessel-Gaussian mode in the spatiotemporal frequency domain. More importantly, the mode distribution of PSTOV wavepackets can be freely controlled by introducing azimuthal-dependent phase modulation, enabling conversion from a standard annular profile to arbitrary polygonal shapes. Finally, experimental results confirm the successful generation of these wavepackets. Our findings will expand the study of STOV pulses and explore their potential applications in optical communications, information processing, topological photonics, and ultrafast control of light-matter interactions.
title Controllable perfect spatiotemporal optical vortices
topic Optics
url https://arxiv.org/abs/2501.10055