Efficient silicon metasurfaces for visible light
Zhou, Zhenpeng · Li, Juntao · Su, Rongbin · Yao, Beimeng · Fang, Hanlin · Li, Kezheng · Zhou, Lidan · Liu, Jin · Stellinga, Daan · Reardon, Christopher P · Krauss, Thomas F · Wang, Xuehua
Original · EN
Dielectric metasurfaces require high refractive index contrast materials for optimum performance. This requirement imposes a severe restraint; devices have either been demonstrated at wavelengths of 700nm and above using high-index semiconductors such as silicon, or they use lower index dielectric materials such as TiO₂ or Si₃N₄ and operate in the visible wavelength regime. Here, we show that the high refractive index of silicon can be exploited at wavelengths as short as 532 nm by demonstrating a silicon metasurface with a transmission efficiency of 47% at this wavelength. The metasurface consists of a graded array of silicon posts arranged in a square lattice on a quartz substrate. We show full 2π phase control and we experimentally demonstrate polarization-independent beam deflection at 532nm wavelength. The crystalline silicon is placed on a quartz substrate by a bespoke layer transfer technique and we note that an efficiency >70% may be achieved for a further optimized structure in the same material. Our results open a new way for realizing efficient metasurfaces based on silicon in the visible wavelength regime.
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