• Opto-Electronic Engineering
  • Vol. 50, Issue 8, 230153 (2023)
Yuchong Zhou1, Weijun Ding1, Zile Li1,2, Hongchao Liu3..., Rao Fu1, Qi Dai1,2,* and Guoxing Zheng1,2,**|Show fewer author(s)
Author Affiliations
  • 1Electronic Information School, Wuhan University, Wuhan, Hubei 430072, China
  • 2Peng Cheng Laboratory, Shenzhen, Guangdong 518055, China
  • 3Institute of Applied Physics and Materials Engineering, University of Macau, Macao SAR 999078, China
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    DOI: 10.12086/oee.2023.230153 Cite this Article
    Yuchong Zhou, Weijun Ding, Zile Li, Hongchao Liu, Rao Fu, Qi Dai, Guoxing Zheng. Multifunctional metasurface image display enabled by merging spatial frequency multiplexing and near- and far-field multiplexing[J]. Opto-Electronic Engineering, 2023, 50(8): 230153 Copy Citation Text show less
    References

    [1] N F Yu, P Genevet, M A Kats et al. Light propagation with phase discontinuities: generalized laws of reflection and refraction. Science, 334, 333-337(2011).

    [2] Y Z Zhang, P C Lin, P C Huo et al. Dielectric metasurface for synchronously spiral phase contrast and bright-field imaging. Nano Lett, 23, 2991-2997(2023).

    [3] H Gao, Y X Wang, X H Fan et al. Dynamic 3D meta-holography in visible range with large frame number and high frame rate. Sci Adv, 6, eaba8595(2020).

    [4] T Shi, Z L Deng, G Z Geng et al. Planar chiral metasurfaces with maximal and tunable chiroptical response driven by bound states in the continuum. Nat Commun, 13, 4111(2022).

    [5] D Y Wang, F F Liu, T Liu et al. Efficient generation of complex vectorial optical fields with metasurfaces. Light Sci Appl, 10, 67(2021).

    [6] B B Yu, J Wen, L Chen et al. Polarization-independent highly efficient generation of Airy optical beams with dielectric metasurfaces. Photonics Res, 8, 1148-1154(2020).

    [7] Z T Xu, L L Huang, X W Li et al. Quantitatively correlated amplitude holography based on photon sieves. Adv Opt Mater, 8, 1901169(2020).

    [8] K Huang, J Deng, H S Leong et al. Ultraviolet metasurfaces of ≈80% efficiency with antiferromagnetic resonances for optical vectorial anti‐counterfeiting. Laser Photonics Rev, 13, 1800289(2019).

    [9] G X Zheng, H Mühlenbernd, M Kenney et al. Metasurface holograms reaching 80% efficiency. Nat Nanotechnol, 10, 308-312(2015).

    [10] R Fu, K X Chen, Z L Li et al. Metasurface-based nanoprinting: principle, design and advances. Opto-Electron Sci, 1, 220011(2022).

    [11] L Wang, S Kruk, H Z Tang et al. Grayscale transparent metasurface holograms. Optica, 3, 1504-1505(2016).

    [12] Z L Li, I Kim, L Zhang et al. Dielectric meta-holograms enabled with dual magnetic resonances in visible light. ACS Nano, 11, 9382-9389(2017).

    [13] S J Tan, L Zhang, D Zhu et al. Plasmonic color palettes for photorealistic printing with aluminum nanostructures. Nano Lett, 14, 4023-4029(2014).

    [14] S Sun, Z X Zhou, C Zhang et al. All-dielectric full-color printing with TiO2 metasurfaces. ACS Nano, 11, 4445-4452(2017).

    [15] B F Gao, M X Ren, W Wu et al. Lithium niobate metasurfaces. Laser Photonics Rev, 13, 1800312(2019).

    [16] F Y Yue, C M Zhang, X F Zang et al. High-resolution grayscale image hidden in a laser beam. Light Sci Appl, 7, 17129(2018).

    [17] Q Dai, L G Deng, J Deng et al. Ultracompact, high-resolution and continuous grayscale image display based on resonant dielectric metasurfaces. Opt Express, 27, 27927-27935(2019).

    [18] K Xu, X E Wang, X H Fan et al. Meta-holography: from concept to realization. Opto-Electron Eng, 49, 220183(2022).

    [19] W T Chen, A Y Zhu, V Sanjeev et al. A broadband achromatic metalens for focusing and imaging in the visible. Nat Nanotechnol, 13, 220-226(2018).

    [20] A Arbabi, Y Horie, A J Ball et al. Subwavelength-thick lenses with high numerical apertures and large efficiency based on high-contrast transmitarrays. Nat Commun, 6, 7069(2015).

    [21] H Pahlevaninezhad, M Khorasaninejad, Y W Huang et al. Nano-optic endoscope for high-resolution optical coherence tomography in vivo. Nat Photonics, 12, 540-547(2018).

    [22] S Shrestha, A C Overvig, M Lu et al. Broadband achromatic dielectric metalenses. Light Sci Appl, 7, 85(2018).

    [23] M Khorasaninejad, W T Chen, R C Devlin et al. Metalenses at visible wavelengths: diffraction-limited focusing and subwavelength resolution imaging. Science, 352, 1190-1194(2016).

    [24] Y C Zhu, X L Chen, W Z Yuan et al. A waveguide metasurface based quasi-far-field transverse-electric superlens. Opto-Electron Adv, 4, 210013(2021).

    [25] G X Zheng, G G Liu, M G Kenney et al. Ultracompact high-efficiency polarising beam splitter based on silicon nanobrick arrays. Opt Express, 24, 6749-6757(2016).

    [26] Z L Li, G X Zheng, P A He et al. All-silicon nanorod-based Dammann gratings. Opt Lett, 40, 4285-4288(2015).

    [27] C W Wan, R Yang, Y Y Shi et al. Visible-frequency meta-gratings for light steering, beam splitting and absorption tunable functionality. Opt Express, 27, 37318-37326(2019).

    [28] Z C Shen, F Zhao, C Q Jin et al. Monocular metasurface camera for passive single-shot 4D imaging. Nat Commun, 14, 1035(2023).

    [29] A Arbabi, Y Horie, M Bagheri et al. Dielectric metasurfaces for complete control of phase and polarization with subwavelength spatial resolution and high transmission. Nat Nanotechnol, 10, 937-943(2015).

    [30] F Y Yue, D D Wen, J T Xin et al. Vector vortex beam generation with a single plasmonic metasurface. ACS Photonics, 3, 1558-1563(2016).

    [31] A Tittl, A Leitis, M K Liu et al. Imaging-based molecular barcoding with pixelated dielectric metasurfaces. Science, 360, 1105-1109(2018).

    [32] F Yesilkoy, E R Arvelo, Y Jahani et al. Ultrasensitive hyperspectral imaging and biodetection enabled by dielectric metasurfaces. Nat Photonics, 13, 390-396(2019).

    [33] Y J Bao, Y Yu, H F Xu et al. Coherent pixel design of metasurfaces for multidimensional optical control of multiple printing-image switching and encoding. Adv Funct Mater, 28, 1805306(2018).

    [34] Mueller J P Balthasar, N A Rubin, R C Devlin et al. Metasurface polarization optics: independent phase control of arbitrary orthogonal states of polarization. Phys Rev Lett, 118, 113901(2017).

    [35] J Y Guo, T Wang, B G Quan et al. Polarization multiplexing for double images display. Opto-Electron Adv, 2, 180029(2019).

    [36] L G Deng, J Deng, Z Q Guan et al. Malus-metasurface-assisted polarization multiplexing. Light Sci Appl, 9, 101(2020).

    [37] J X Li, Y Q Chen, Y Q Hu et al. Magnesium-based metasurfaces for dual-function switching between dynamic holography and dynamic color display. ACS Nano, 14, 7892-7898(2020).

    [38] J Deng, L G Deng, Z Q Guan et al. Multiplexed anticounterfeiting meta-image displays with single-sized nanostructures. Nano Lett, 20, 1830-1838(2020).

    [39] D D Wen, J J Cadusch, J J Meng et al. Multifunctional dielectric metasurfaces consisting of color holograms encoded into color printed images. Adv Funct Mater, 30, 1906415(2020).

    [40] J Deng, Y Yang, J Tao et al. Spatial frequency multiplexed meta-holography and meta-nanoprinting. ACS Nano, 13, 9237-9246(2019).

    [41] F Zhang, M B Pu, P Gao et al. Simultaneous full-color printing and holography enabled by centimeter-scale plasmonic metasurfaces. Adv Sci, 7, 1903156(2020).

    [42] R Yang, Q Q Yu, Y W Pan et al. Directional-multiplexing holography by on-chip metasurface. Opto-Electron Eng, 49, 220177(2022).

    [43] M V Berry. Quantal phase factors accompanying adiabatic changes. Proc Roy Soc A Math Phys Eng Sci, 392, 45-57(1984).

    [44] S Pancharatnam. Generalized theory of interference, and its applications. Proc Indian Acad Sci Sec A, 44, 247-262(1956).

    [45] X Xie, M B Pu, J J Jin et al. Generalized pancharatnam-berry phase in rotationally symmetric meta-atoms. Phys Rev Lett, 126, 183902(2021).

    [46] M Khorasaninejad, A Y Zhu, C Roques-Carmes et al. Polarization-insensitive metalenses at visible wavelengths. Nano Lett, 16, 7229-7234(2016).

    [47] K E Chong, I Staude, A James et al. Polarization-independent silicon metadevices for efficient optical wavefront control. Nano Lett, 15, 5369-5374(2015).

    [48] A Papadopoulos, T Nguyen, E Durmus et al. IllusionPIN: shoulder-surfing resistant authentication using hybrid images. IEEE Trans Inf Forensics Secur, 12, 2875-2889(2017).

    [49] J Mannos, D Sakrison. The effects of a visual fidelity criterion of the encoding of images. IEEE Trans Inf Theory, 20, 525-536(1974).

    [50] Q Dai, Z Q Guan, S Chang et al. A single-celled tri-functional metasurface enabled with triple manipulations of light. Adv Funct Mater, 30, 2003990(2020).

    Yuchong Zhou, Weijun Ding, Zile Li, Hongchao Liu, Rao Fu, Qi Dai, Guoxing Zheng. Multifunctional metasurface image display enabled by merging spatial frequency multiplexing and near- and far-field multiplexing[J]. Opto-Electronic Engineering, 2023, 50(8): 230153
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