| Literature DB >> 30423252 |
Wei Ting Chen1, Alexander Y Zhu1, Jared Sisler1,2, Yao-Wei Huang1,3, Kerolos M A Yousef1,4, Eric Lee1,2, Cheng-Wei Qiu3, Federico Capasso1.
Abstract
Existing methods of correcting for chromatic aberrations in optical systems are limited to two approaches: varying the material dispersion in refractive lenses or incorporating grating dispersion via diffractive optical elements. Recently, single-layer broadband achromatic metasurface lenses have been demonstrated but are limited to diameters on the order of 100 μm due to the large required group delays. Here, we circumvent this limitation and design a metacorrector by combining a tunable phase and artificial dispersion to correct spherical and chromatic aberrations in a large spherical plano-convex lens. The tunability results from a variation in light confinement in sub-wavelength waveguides by locally tailoring the effective refractive index. The effectiveness of this approach is further validated by designing a metacorrector, which greatly increases the bandwidth of a state-of-the-art immersion objective (composed of 14 lenses and 7 types of glasses) from violet to near-infrared wavelengths. This concept of hybrid metasurface-refractive optics combines the advantages of both technologies in terms of size, scalability, complexity, and functionality.Entities:
Keywords: Metasurface; achromatic metalens; dispersion engineering; polarization-insensitive; titanium dioxide; visible spectrum
Year: 2018 PMID: 30423252 DOI: 10.1021/acs.nanolett.8b03567
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189