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Polarization-Independent Silicon Metadevices for Efficient Optical Wavefront Control
Author(s) -
Katie E. Chong,
Isabelle Staude,
Anthony Randolph James,
Jason Dominguez,
Sheng Liu,
Salvatore Campione,
Ganapathi Subramania,
Ting S. Luk,
Manuel Decker,
Dragomir N. Neshev,
Igal Brener,
Yuri S. Kivshar
Publication year - 2015
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.5b01752
Subject(s) - polarization (electrochemistry) , wavefront , silicon , optics , materials science , optoelectronics , physics , chemistry
We experimentally demonstrate a functional silicon metadevice at telecom wavelengths that can efficiently control the wavefront of optical beams by imprinting a spatially varying transmittance phase independent of the polarization of the incident beam. Near-unity transmittance efficiency and close to 0-2π phase coverage are enabled by utilizing the localized electric and magnetic Mie-type resonances of low-loss silicon nanoparticles tailored to behave as electromagnetically dual-symmetric scatterers. We apply this concept to realize a metadevice that converts a Gaussian beam into a vortex beam. The required spatial distribution of transmittance phases is achieved by a variation of the lattice spacing as a single geometric control parameter.

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