• Opto-Electronic Advances
  • Vol. 7, Issue 10, 240085 (2024)
Xiaotong Li1,2,†, Xiaodong Cai1,†, Chang Liu1,†, Yeseul Kim2..., Trevon Badloe3, Huanhuan Liu4, Junsuk Rho2,5,6,7 and Shiyi Xiao1,*|Show fewer author(s)
Author Affiliations
  • 1Key Laboratory of Specialty Fiber Optics and Optical Access Networks, Joint International Research Laboratory of Specialty Fiber Optics and Advanced Communication, Shanghai Institute for Advanced Communication and Data Science, Shanghai University, Shanghai 200240, China
  • 2Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea
  • 3Graduate School of Artificial Intelligence, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea
  • 4Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China
  • 5Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea
  • 6Department of Electrical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea
  • 7POSCO-POSTECH-RIST Convergence Research Center for Flat Optics and Metaphotonics, Pohang 37673, Republic of Korea
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    DOI: 10.29026/oea.2024.240085 Cite this Article
    Xiaotong Li, Xiaodong Cai, Chang Liu, Yeseul Kim, Trevon Badloe, Huanhuan Liu, Junsuk Rho, Shiyi Xiao. Cascaded metasurfaces enabling adaptive aberration corrections for focus scanning[J]. Opto-Electronic Advances, 2024, 7(10): 240085 Copy Citation Text show less
    References

    [1] GF Marshall, GE Stutz. Handbook of Optical and Laser Scanning(2004).

    [2] RF Guthoff, C Baudouin, J Stave. Atlas of Confocal Laser Scanning In-vivo Microscopy in Ophthalmology(2007).

    [3] NF Yu, P Genevet, MA Kats et al. Light propagation with phase discontinuities: generalized laws of reflection and refraction.. Science, 334, 333-337(2011).

    [4] SL Sun, Q He, SY Xiao et al. Gradient-index meta-surfaces as a bridge linking propagating waves and surface waves.. Nat Mater, 11, 426-431(2012).

    [5] XB Yin, ZL Ye, J Rho et al. Photonic spin hall effect at metasurfaces.. Science, 339, 1405-1407(2013).

    [6] RJ Lin, VC Su, SM Wang et al. Achromatic metalens array for full-colour light-field imaging.. Nat Nanotechnol, 14, 227-231(2019).

    [7] Q Geng, DE Wang, PF Chen et al. Ultrafast multi-focus 3-D nano-fabrication based on two-photon polymerization.. Nat Commun, 10, 2179(2019).

    [8] BW Yang, T Liu, HJ Guo et al. High-performance meta-devices based on multilayer meta-atoms: interplay between the number of layers and phase coverage.. Sci Bull, 64, 823-835(2019).

    [9] F Zhang, MB Pu, X Li et al. Extreme‐angle silicon infrared optics enabled by streamlined surfaces.. Adv Mater, 33, 2008157(2021).

    [10] CW Qiu, T Zhang, GW Hu et al. Quo vadis, metasurfaces.. Nano Lett, 21, 5461-5474(2021).

    [11] MY Pan, YF Fu, MJ Zheng et al. Dielectric metalens for miniaturized imaging systems: progress and challenges.. Light Sci Appl, 11, 195(2022).

    [12] FX Guan, XD Guo, KB Zeng et al. Overcoming losses in superlenses with synthetic waves of complex frequency.. Science, 381, 766-771(2023).

    [13] GH Go, CH Park, KY Woo et al. Scannable dual-focus metalens with hybrid phase.. Nano Lett, 23, 3152-3158(2023).

    [14] TJ Cui, MQ Qi, X Wan et al. Coding metamaterials, digital metamaterials and programmable metamaterials.. Light Sci Appl, 3, e218(2014).

    [15] K Chen, YJ Feng, F Monticone et al. A reconfigurable active Huygens' metalens.. Adv Mater, 29, 1606422(2017).

    [16] L Zhang, XQ Chen, S Liu et al. Space-time-coding digital metasurfaces.. Nat Commun, 9, 4334(2018).

    [17] A Casolaro, A Toscano, A Alù et al. Dynamic beam steering with reconfigurable metagratings.. IEEE Trans Antennas Propag, 68, 1542-1552(2020).

    [18] XG Zhang, WX Jiang, HL Jiang et al. An optically driven digital metasurface for programming electromagnetic functions.. Nat Electron, 3, 165-171(2020).

    [19] A Forouzmand, H Mosallaei. A tunable semiconductor-based transmissive metasurface: dynamic phase control with high transmission level.. Laser Photon Rev, 14, 1900353(2020).

    [20] S Venkatesh, XY Lu, H Saeidi et al. A high-speed programmable and scalable terahertz holographic metasurface based on tiled CMOS chips.. Nat Electron, 3, 785-793(2020).

    [21] Y Li, J Lin, HJ Guo et al. A tunable metasurface with switchable functionalities: from perfect transparency to perfect absorption.. Adv Opt Mater, 8, 1901548(2020).

    [22] YQ Hu, XN Ou, TB Zeng et al. Electrically tunable multifunctional polarization-dependent metasurfaces integrated with liquid crystals in the visible region.. Nano Lett, 21, 4554-4562(2021).

    [23] J Kim, J Seong, Y Yang et al. Tunable metasurfaces towards versatile metalenses and metaholograms: a review.. Adv Photonics, 4, 024001(2022).

    [24] Q Xu, XQ Su, XQ Zhang et al. Mechanically reprogrammable Pancharatnam-Berry metasurface for microwaves.. Adv Photonics, 4, 016002(2022).

    [25] QS Li, XD Cai, T Liu et al. Gate-tuned graphene meta-devices for dynamically controlling terahertz wavefronts.. Nanophotonics, 11, 2085-2096(2022).

    [26] C Li, J Jang, T Badloe et al. Arbitrarily structured quantum emission with a multifunctional metalens.. eLight, 3, 19(2023).

    [27] JZ Qin, MJ Wang, CW Qiu. Graphene metasurface hits the point.. Light Sci Appl, 12, 110(2023).

    [28] T Badloe, Y Kim, J Kim et al. Bright-field and edge-enhanced imaging using an electrically tunable dual-mode metalens.. ACS Nano, 17, 14678-14685(2023).

    [29] HX Xu, SJ Ma, WJ Luo et al. Aberration-free and functionality-switchable meta-lenses based on tunable metasurfaces.. Appl Phys Lett, 109, 193506(2016).

    [30] S Bernet, M Ritsch-Marte. Adjustable refractive power from diffractive moiré elements.. Appl Opt, 47, 3722-3730(2008).

    [31] K Iwami, C Ogawa, T Nagase et al. Demonstration of focal length tuning by rotational varifocal moiré metalens in an ir-A wavelength.. Opt Express, 28, 35602-35614(2020).

    [32] XD Cai, R Tang, HY Zhou et al. Dynamically controlling terahertz wavefronts with cascaded metasurfaces.. Adv Photonics, 3, 036003(2021).

    [33] Y Luo, CH Chu, S Vyas et al. Varifocal metalens for optical sectioning fluorescence microscopy.. Nano Lett, 21, 5133-5142(2021).

    [34] S Liu, SJ Ma, RW Shao et al. Moiré metasurfaces for dynamic beamforming.. Sci Adv, 8, eabo1511(2022).

    [35] R J Martins, E Marinov, M A B Youssef et al. Metasurface-enhanced light detection and ranging technology.. Nat Commun, 13, 5724(2022).

    [36] C Ogawa, S Nakamura, T Aso et al. Rotational varifocal moiré metalens made of single-crystal silicon meta-atoms for visible wavelengths.. Nanophotonics, 11, 1941-1948(2022).

    [37] QS Wei, LL Huang, RZ Zhao et al. Rotational multiplexing method based on cascaded metasurface holography.. Adv Opt Mater, 10, 2102166(2022).

    [38] JC Zhang, GB Wu, MK Chen et al. A 6G meta-device for 3D varifocal.. Sci Adv, 9, eadf8478(2023).

    [39] JC Zhang, MK Chen, YB Fan et al. Miniature tunable airy beam optical meta-device.. Opto-Electron Adv, 7, 230171(2024).

    [40] J Kim, J Seong, W Kim et al. Scalable manufacturing of high-index atomic layer–polymer hybrid metasurfaces for metaphotonics in the visible.. Nat Mater, 22, 474-481(2023).

    [41] A Palmieri, AH Dorrah, J Yang et al. Do dielectric bilayer metasurfaces behave as a stack of decoupled single-layer metasurfaces.. Opt Express, 32, 8146-8159(2024).

    Xiaotong Li, Xiaodong Cai, Chang Liu, Yeseul Kim, Trevon Badloe, Huanhuan Liu, Junsuk Rho, Shiyi Xiao. Cascaded metasurfaces enabling adaptive aberration corrections for focus scanning[J]. Opto-Electronic Advances, 2024, 7(10): 240085
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