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May 3, 20262 citations

Spatiotemporally localized optical links and knots.

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YZYaning ZhouNZNianjia ZhangAZAo Zhou

Key Points

  • This work aims to develop a method for creating optical knots and links that are both spatially and temporally localized.
  • Proposed a scheme utilizing polychromatic wave fields with coupled spatial and temporal degrees of freedom.
  • Demonstrated through experimental realization of superpositions of toroidal light vortices.
  • Analyzed the propagation characteristics and topological robustness of the resulting structures.
  • Successfully created spatiotemporally localized topological textures comprising individual and nested links and knots.
  • Topological structures exhibited remarkable stability during propagation at wave packet group velocities.
  • Showed potential applicability in high-capacity informatics and communications.

Abstract

Optical links and knots have attracted growing attention owing to their exotic topologic features and promising applications in next-generation information transfer and storage. However, current protocols for optical topology realization rely on paraxial propagation of spatial modes, which inherently limits their three-dimensional topological structures to longitudinal space-filling. In this work, we propose and experimentally demonstrate a scheme for creating optical knots and links that are localized in space within a transverse plane of a paraxial field, as well as in time. These spatiotemporal topological structures arise from polychromatic wave fields with tightly coupled spatial and temporal degrees of freedom that can be realized in the form of superpositions of toroidal light vortices of opposite topological charges. The (2 + 1)-dimensional nature of a toroidal light vortex imparts spatiotemporally localized wave fields with nontrivial topological textures, encompassing both individual and nested links or knots configurations. Moreover, the resulting topological textures are localized on an ultrashort timescale, propagate at the group velocity of the wave packets and exhibit remarkable topological robustness during propagation as optical carriers. The nascent connection between spatiotemporally localized fields and topology offers exciting prospects for advancing space-time photonic topologies and exploring their potential applications in high-capacity informatics and communications.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69f6e6e68071d4f1bdfc77d2https://doi.org/10.1038/s41467-026-72774-1
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