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Ultra-thin double-layer plasmonic metalens with ultra-broadband bandwidth and high numerical aperture

  • Yong Qiang Liu*
  • , Wei Dai
  • , Jinhai Sun
  • , Liming Si*
  • *Corresponding author for this work
  • National Key Laboratory of Scattering and Radiation
  • Communication University of China
  • Beijing Institute of Technology
  • State Key Laboratory of Environment Characteristics and Effects for Near-Space

Research output: Contribution to journalArticlepeer-review

Abstract

Broadband or ultra-broadband metalenses with high-performance focusing are essential for various applications across from the optical band to lower microwave spectrums. To design an ultra-broadband metalens with both a high numerical aperture (NA) and an ultra-thin device profile is still a great challenge in the field. In this paper, an ultra-broadband (within the entire Ku band: 12-18 GHz) bi-layer plasmonic microwave metalens is designed and presented both numerically and experimentally. Simulated and experimental results indicate that the dispersion characteristic of ultra-broadband metalens is regularly negative, which shows a linearly increased focal length along with the increased operation frequency. Besides, the presented ultra-broadband microwave metalens has an average transmission efficiency of 35%, focusing efficiency of 20% and a high NA of 0.7 on average in the simulations. The device thickness of the presented ultra-broadband metalens is only 0.125λ00 is the central wavelength of 15 GHz), which shows an ultra-compact design advantage compared to previous works. The sample is also fabricated, and a much higher focusing efficiency as well as a smaller NA are obtained in the measurements. The presented diffractive characteristic is different from previously reported refractive-type broadband microwave metalenses based on dielectric metasurfaces. The presented microwave metalens can find many potential applications, such as metalens antennas, high-resolution imaging, and broadband meta-lens retro-reflectors in the Ku band.

Original languageEnglish
Pages (from-to)20660-20674
Number of pages15
JournalOptics Express
Volume34
Issue number11
DOIs
Publication statusPublished - 1 Jun 2026
Externally publishedYes

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