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Ultrafast space-time optical merons in momentum-energy space

  • Murat Yessenov (Corresponding author)
  • , Ahmed H. Dorrah
  • , Cheng Guo
  • , Layton A. Hall
  • , Joon-Suh Park
  • , Justin Free
  • , Eric G. Johnson
  • , Federico Capasso
  • , Shanhui Fan
  • , Ayman F. Abouraddy

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Skyrmions, topologically non-trivial localized spin structures, are fertile ground for exploring emergent phenomena in condensed matter physics and next-generation magnetic-memory technologies. Although magnetics and optics readily lend themselves to two-dimensional realizations of spin texture, only recently have breakthroughs brought forth three-dimensional (3D) magnetic skyrmions, whereas their optical counterparts have eluded observation to date because their realization requires precise control over the spatiotemporal spectrum. Here, we demonstrate freely propagating 3D-localized optical skyrmionic structures with a non-trivial topological profile by imprinting meron polarization texture on open and closed spectral surfaces in the momentum-energy space of an ultrafast optical wave packet. Precise control over the spatiotemporal polarization texture of light - a key requisite for synthesizing 3D optical merons - is the product of synergy between novel methodologies in the modulation of light jointly in space and time, digital holography, and large-area birefringent metasurfaces. Our work advances the fields of polarization optics and topological photonics and may inspire new developments in imaging, metrology, optical communications, and quantum technologies.

Original languageEnglish
Article number8592
Number of pages10
JournalNature Communications
Volume16
Issue number1
DOIs
Publication statusPublished - 29 Sept 2025
Externally publishedYes

Bibliographical note

© 2025. The Author(s).

Funding

We thank A. Palmieri from Harvard University for providing the metasurface library, and J. Keith Miller from Clemson University for providing the description of the diffractive phase plates. Work at UCF was supported by the US Office of Naval Research (ONR) under award N00014-17-1-2458, and the ONR MURI program under award N00014-20-1-2789. Work at Harvard was supported by the ONR MURI program, under award N00014-20-1-2450, and by the Air Force Office of Scientific Research (AFOSR) under award FA9550-22-1-0243. Work at Clemson was supported by the ONR MURI program, under award N00014-20-1-2558. Work at Stanford was supported by the ONR MURI program, under award N00014-20-1-2450.

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