Polarization-Independent and High-Efficiency Dielectric Metasurfaces Spanning 600-800 nm Wavelengths
arXiv:1509.09042 · doi:10.1364/OE.24.016309
Abstract
Artificial metasurfaces are capable of completely manipulating the phase, amplitude, and polarization of light with high spatial resolutions. The emerging design based on high-index and low-loss dielectrics has led to the realization of novel metasurfaces with high transmissions, but these devices usually operate at the limited bandwidth, and are sensitive to the incident polarization. Here, for the first time we report experimentally the polarization-independent and high-efficiency dielectric metasurfaces spanning the visible wavelengths about 200 nm, which are of importance for novel flat optical devices operating over a broad spectrum. The diffraction efficiencies of the gradient metasurfaces consisting of the multi-fold symmetric nano-crystalline silicon nanopillars are up to 93% at 670 nm, and exceed 75% at the wavelengths from 600 to 800 nm for the two orthogonally polarized incidences. These dielectric metasurfaces hold great potential to replace prisms, lenses and other conventional optical elements.
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Cited by in corpus (6)
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- Efficient silicon metasurfaces for visible light
- Nanoscale polarization manipulation and encryption based on dielectric metasurfaces
- Genetically optimized All-dielectric metasurfaces
- Crossing of the branch cut: the topological origin of a universal 2π-phase retardation in non-Hermitian metasurfaces
- Design of mechanically robust metasurface lenses for RGB colors