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Broadband Linear-to-Circular Polarization Conversion Enabled by Birefringent Off-Resonance Reflective Metasurfaces. | LitMetric

AI Article Synopsis

  • Limited availability of circular polarization light sources necessitates converting linear polarization to circular for various uses, especially in terahertz and mid-infrared ranges.
  • A new method has been developed using coupled mode theory, demonstrating efficient linear-to-circular polarization conversion with up to 80% fractional bandwidth at terahertz frequencies through specially designed birefringent metasurfaces.
  • This mechanism can work across a range of frequencies from microwave to visible light, expanding possibilities for applications in wireless communication, spectroscopy, and quantum materials research.

Article Abstract

Due to the scarcity of circular polarization light sources, linear-to-circular polarization conversion is required to generate circularly polarized light for a variety of applications. Despite significant past efforts, broadband linear-to-circular polarization conversion remains elusive particularly in the terahertz and midinfrared frequency ranges. Here we propose a novel mechanism based on coupled mode theory, and experimentally demonstrate at terahertz frequencies that highly efficient (power conversion efficiency approaching unity) and ultrabroadband (fractional bandwidth up to 80%) linear-to-circular polarization conversion can be accomplished by the judicious design of birefringent metasurfaces. The underlying mechanism operates in the frequency range between well separated resonances, and relies upon the phase response of these resonances away from the resonant frequencies, as well as the balance of the resonant and nonresonant channels. This mechanism is applicable for any operating frequencies from microwave to visible. The present Letter potentially opens a wide range of opportunities in wireless communications, spectroscopy, and emergent quantum materials research where circularly polarized light is desired.

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Source
http://dx.doi.org/10.1103/PhysRevLett.123.237401DOI Listing

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