Publication | Open Access
High‐Efficiency Dielectric Huygens’ Surfaces
1.3K
Citations
41
References
2015
Year
DielectricsOptical MaterialsMagnetic Dipole ResonancesEngineeringMetasurfacesMetamaterialsOptoelectronic DevicesElectromagnetic MetamaterialsQuantum MetamaterialsOptical PropertiesOptical MetasurfacesOptical SystemsNanophotonicsPhotonicsElectrical EngineeringPhysicsPhotonic MaterialsOptical AntennasMetaopticsSurface CharacterizationPlasmonicsSurface AnalysisSurface ScienceApplied PhysicsSurface EngineeringDynamic MetamaterialsDispersion Control
Optical metasurfaces have developed as a breakthrough concept for advanced wave‐front engineering enabled by subwavelength resonant nanostructures. However, reflection and/or absorption losses as well as low polarization‐conversion efficiencies pose a fundamental obstacle for achieving high transmission efficiencies that are required for practical applications. Here, for the first time to our knowledge, highly efficient all‐dielectric metasurfaces are demonstrated for NIR frequencies using arrays of silicon nanodisks as metaatoms. The main features of Huygens' sources are employed, namely, spectrally overlapping crossed electric and magnetic dipole resonances of equal strength, to demonstrate Huygens' surfaces with full transmission‐phase coverage of 360° and near‐unity transmission. Full‐phase coverage combined with high efficiency in transmission are experimentally confirmed. Based on these key properties, all‐dielectric Huygens' metasurfaces can become a new paradigm for flat optical devices, including beam‐steering, beam‐shaping, and focusing, as well as holography and dispersion control.
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