Multifunctional metasurfaces enabled by simultaneous and independent control of phase and amplitude for orthogonal polarization states

Mingze Liu(Collaborative Innovation Center of Advanced Microstructures), Wenqi Zhu(National Institute of Standards and Technology), Pengcheng Huo(Collaborative Innovation Center of Advanced Microstructures), Lei Feng(Collaborative Innovation Center of Advanced Microstructures), Maowen Song(Collaborative Innovation Center of Advanced Microstructures), Cheng Zhang(Wuhan National Laboratory for Optoelectronics), Lu Chen(National Institute of Standards and Technology), Henri J. Lezec(National Institute of Standards and Technology), Yanqing Lu(Collaborative Innovation Center of Advanced Microstructures), Amit Agrawal(National Institute of Standards and Technology), Ting Xu(Collaborative Innovation Center of Advanced Microstructures)
Light Science & Applications
May 25, 2021
Cited by 372Open Access
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Abstract

Monochromatic light can be characterized by its three fundamental properties: amplitude, phase, and polarization. In this work, we propose a versatile, transmission-mode all-dielectric metasurface platform that can independently manipulate the phase and amplitude for two orthogonal states of polarization in the visible frequency range. For proof-of-concept experimental demonstration, various single-layer metasurfaces composed of subwavelength-spaced titanium-dioxide nanopillars are designed, fabricated, and characterized to exhibit the ability of polarization-switchable multidimensional light-field manipulation, including polarization-switchable grayscale nanoprinting, nonuniform cylindrical lensing, and complex-amplitude holography. We envision the metasurface platform demonstrated here to open new possibilities toward creating compact multifunctional optical devices for applications in polarization optics, information encoding, optical data storage, and security.


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