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Tailoring spatiotemporal dynamics of plasmonic vortices

Xinyao Yuan et al · Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China · 2023

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Plasmonic vortices confining orbital angular momentums to surface have aroused wide research interest in the last decade. Recent advances of near-field microscopes have enabled the study on the spatiotemporal dynamics of plasmonic vortices, providing a better understanding of optical orbital angular momentums in the evanescent wave regime. However, these works only focused on the objective characterization of plasmonic vortex and have not achieved subjectively tailoring of its spatiotemporal dynamics for specific applications. Herein, it is demonstrated that the plasmonic vortices with the same topological charge can be endowed with distinct spatiotemporal dynamics by simply changing the coupler design. Based on a near-field scanning terahertz microscopy, the surface plasmon fields are directly obtained with ultrahigh spatiotemporal resolution, experimentally exhibiting the generation and evolution divergences during the whole lifetime of plasmonic vortices. The proposed strategy is straightforward and universal, which can be readily applied into visible or infrared frequencies, facilitating the development of plasmonic vortex related researches and applications.

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APA 7

al, X. Y. E. (2023). Tailoring spatiotemporal dynamics of plasmonic vortices. https://doi.org/10.29026/oea.2023.220133

MLA

al, Xinyao Yuan et. "Tailoring spatiotemporal dynamics of plasmonic vortices." 2023. https://doi.org/10.29026/oea.2023.220133.

Chicago

al, Xinyao Yuan et. 2023. "Tailoring spatiotemporal dynamics of plasmonic vortices.". https://doi.org/10.29026/oea.2023.220133.

Harvard

al, X. Y. E. 2023, Tailoring spatiotemporal dynamics of plasmonic vortices, Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China, available at: https://doi.org/10.29026/oea.2023.220133 [Accessed 10 Aug. 2026].

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Title
Tailoring spatiotemporal dynamics of plasmonic vortices
Author / contributors
Xinyao Yuan et al
Publisher
Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China
Publication year
2023
ISSN
2096-4579
ISSN
2096-4579
Language
English

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