| Literature DB >> 28898048 |
Zile Li1, Inki Kim2, Lei Zhang3, Muhammad Q Mehmood4, Muhammad S Anwar5, Murtaza Saleem5, Dasol Lee2, Ki Tae Nam6, Shuang Zhang7, Boris Luk'yanchuk8,9,10, Yu Wang1, Guoxing Zheng1,11, Junsuk Rho2,12, Cheng-Wei Qiu13,14.
Abstract
Efficient transmission-type meta-holograms have been demonstrated using high-index dielectric nanostructures based on Huygens' principle. It is crucial that the geometry size of building blocks be judiciously optimized individually for spectral overlap of electric and magnetic dipoles. In contrast, reflection-type meta-holograms using the metal/insulator/metal scheme and geometric phase can be readily achieved with high efficiency and small thickness. Here, we demonstrate a general platform for design of dual magnetic resonance based meta-holograms based on the geometric phase using silicon nanostructures that are quarter wavelength thick for visible light. Significantly, the projected holographic image can be unambiguously observed without a receiving screen even under the illumination of natural light. Within the well-developed semiconductor industry, our ultrathin magnetic resonance-based meta-holograms may have promising applications in anticounterfeiting and information security.Entities:
Keywords: dielectric nanostructures; image hologram; magnetic resonance; metasurfaces
Year: 2017 PMID: 28898048 DOI: 10.1021/acsnano.7b04868
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881