• Laser & Optoelectronics Progress
  • Vol. 59, Issue 4, 0405001 (2022)
Feng Gao, Chenyue Zhu, Jingyue Li, Chunyan Wu*, and Linbao Luo
Author Affiliations
  • School of Electronic Science and Applied Physics, Hefei University of Technology, Hefei , Anhui 230601, China
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    DOI: 10.3788/LOP202259.0405001 Cite this Article Set citation alerts
    Feng Gao, Chenyue Zhu, Jingyue Li, Chunyan Wu, Linbao Luo. ITO-Based Active Metasurfaces with Phase Tunability[J]. Laser & Optoelectronics Progress, 2022, 59(4): 0405001 Copy Citation Text show less
    References

    [1] Mollaei M S M, Simovski C. Dual-metasurface superlens: a comprehensive study[J]. Physical Review B, 100, 205426(2019).

    [2] Cui Y, Zheng G X, Chen M et al. Reconfigurable continuous-zoom metalens in visible band[J]. Chinese Optics Letters, 17, 111603(2019).

    [3] Luo Y, Wang W T, Zhao P J et al. Dual-mode metasurface of polarization-specific focusing and keeping wavefront[J]. Chinese Journal of Lasers, 47, 0301007(2020).

    [4] Zheng G, Mühlenbernd H, Kenney M et al. Metasurface holograms reaching 80% efficiency[J]. Nature Nanotechnology, 10, 308-312(2015).

    [5] Hu Z, Xu T, Tang R et al. Geometric-phase metasurfaces: from physics to applications[J]. Laser & Optoelectronics Progress, 56, 202408(2019).

    [6] Yin X B, Ye Z L, Rho J et al. Photonic spin Hall effect at metasurfaces[J]. Science, 339, 1405-1407(2013).

    [7] Liu K T, Liu X, Ge Y H et al. Generation of orbital angular momentum vortex beams based on high-efficiency transmission metasurfaces[J]. Acta Optica Sinica, 39, 0126016(2019).

    [8] Chen H T, Padilla W J, Cich M J et al. A metamaterial solid-state terahertz phase modulator[J]. Nature Photonics, 3, 148-151(2009).

    [9] Zhou Y, Chen L W, Du Z R et al. Tunable optical nonlinearity of silicon nanoparticles in solid state organic matrix[J]. Optical Materials Express, 5, 1606-1612(2015).

    [10] Rahmani M, Xu L, Miroshnichenko A E et al. Reversible thermal tuning of all-dielectric metasurfaces[J]. Advanced Functional Materials, 27, 1700580(2017).

    [11] Fan Y C, Shen N H, Koschny T et al. Tunable terahertz meta-surface with graphene cut-wires[J]. ACS Photonics, 2, 151-156(2015).

    [12] Yuan Y H, Chen X Y, Hu F R et al. Terahertz amplitude modulator based on metasurface/ion-gel/graphene hybrid structure[J]. Chinese Journal of Lasers, 46, 0614016(2019).

    [13] Komar A, Paniagua-Domínguez R, Miroshnichenko A et al. Dynamic beam switching by liquid crystal tunable dielectric metasurfaces[J]. ACS Photonics, 5, 1742-1748(2018).

    [14] Song Z Y, Wei M L, Wang Z S et al. Terahertz absorber with reconfigurable bandwidth based on isotropic vanadium dioxide metasurfaces[J]. IEEE Photonics Journal, 11, 1-7(2019).

    [15] Sun K, Riedel C A, Wang Y D et al. Metasurface optical solar reflectors using AZO transparent conducting oxides for radiative cooling of spacecraft[J]. ACS Photonics, 5, 495-501(2018).

    [16] Rajak S, Ray M. Comparative study of plasmonic resonance in transparent conducting oxides: ITO and AZO[J]. Journal of Optics, 43, 231-238(2014).

    [17] Chen C N, Wang Z W, Wu K et al. Tunable near-infrared epsilon-near-zero and plasmonic properties of Ag-ITO co-sputtered composite films[J]. Science and Technology of Advanced Materials, 19, 174-184(2018).

    [18] Maki K, Komiya N, Suzuki A. Fabrication of thin films of ITO by aerosol CVD[J]. Thin Solid Films, 445, 224-228(2003).

    [19] Comin A, Manna L. New materials for tunable plasmonic colloidal nanocrystals[J]. Chemical Society Reviews, 43, 3957-3975(2014).

    [20] Alipour A, Farmani A, Mir A. High sensitivity and tunable nanoscale sensor based on plasmon-induced transparency in plasmonic metasurface[J]. IEEE Sensors Journal, 18, 7047-7054(2018).

    [21] Klein A, Körber C, Wachau A et al. Transparent conducting oxides for photovoltaics: manipulation of fermi level, work function and energy band alignment[J]. Materials, 3, 4892-4914(2010).

    [22] Fujiwara H, Kondo M. Effects of carrier concentration on the dielectric function of ZnO∶Ga and In2O3∶Sn studied by spectroscopic ellipsometry: analysis of free-carrier and band-edge absorption[J]. Physical Review B, 71, 075109(2005).

    [23] Huang C P, Yin X G, Zhang Y et al. Deep subwavelength Fabry-Perot-like resonances in a sandwiched reflection grating[J]. Physical Review B, 85, 235410(2012).

    [24] Dolling G, Enkrich C, Wegener M et al. Cut-wire pairs and plate pairs as magnetic atoms for optical metamaterials[J]. Optics Letters, 30, 3198-3200(2005).

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

    [26] Zhang Z R, Wen D D, Zhang C M et al. Multifunctional light sword metasurface lens[J]. ACS Photonics, 5, 1794-1799(2018).

    [27] Li R Z, Guo Z Y, Wang W et al. Arbitrary focusing lens by holographic metasurface[J]. Photonics Research, 3, 252-255(2015).

    [28] Wang S, Lai J, Wu T et al. Wide-band achromatic flat focusing lens based on all-dielectric subwavelength metasurface[J]. Optics Express, 25, 7121-7130(2017).

    Feng Gao, Chenyue Zhu, Jingyue Li, Chunyan Wu, Linbao Luo. ITO-Based Active Metasurfaces with Phase Tunability[J]. Laser & Optoelectronics Progress, 2022, 59(4): 0405001
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