• Opto-Electronic Advances
  • Vol. 2, Issue 3, 180023 (2019)
Xiaoliang Ma1、2, Mingbo Pu1、2, Xiong Li1、2, Yinghui Guo1, and Xiangang Luo1、2、*
Author Affiliations
  • 1State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu, 610209, China
  • 2School of Optoelectronics, University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.29026/oea.2019.180023 Cite this Article
    Xiaoliang Ma, Mingbo Pu, Xiong Li, Yinghui Guo, Xiangang Luo. All-metallic wide-angle metasurfaces for multifunctional polarization manipulation[J]. Opto-Electronic Advances, 2019, 2(3): 180023 Copy Citation Text show less
    References

    [1] R Paniagua-Domínguez, Y F Yu, A E Miroshnichenko, L A Krivitsky, Y H Fu et al. Generalized Brewster effect in dielectric metasurfaces. Nat Commun, 7, 10362(2016).

    [2] A Alù, G D'Aguanno, N Mattiucci, M J Bloemer. Plasmonic Brewster angle: broadband extraordinary transmission through optical gratings. Phys Rev Lett, 106, 123902(2011).

    [3] Y C Shen, D X Ye, I Celanovic, S G Johnson, J D Joannopoulos et al. Optical broadband angular selectivity. Science, 343, 1499-1501(2014).

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

    [5] M B Pu, X Li, X L Ma, Y Q Wang, Z Y Zhao et al. Catenary optics for achromatic generation of perfect optical angular momentum. Sci Adv, 1, e1500396(2015).

    [6] D L Tang, C T Wang, Z Y Zhao, Y Q Wang, M B Pu et al. Ultrabroadband superoscillatory lens composed by plasmonic metasurfaces for subdiffraction light focusing. Laser Photonics Rev, 9, 713-719(2015).

    [7] A E Minovich, A E Miroshnichenko, A Y Bykov, T V Murzina, D N Neshev et al. Functional and nonlinear optical metasurfaces. Laser Photonics Rev, 9, 195-213(2015).

    [8] F Qin, L Ding, L Zhang, F Monticone, C C Chum et al. Hybrid bilayer plasmonic metasurface efficiently manipulates visible light. Sci Adv, 2, e1501168(2016).

    [9] Z J Ma, S M Hanham, P Albella, B Ng, H T Lu et al. Terahertz all-dielectric magnetic mirror metasurfaces. ACS Photonics, 3, 1010-1018(2016).

    [10] C H Chu, M L Tseng, J Chen, P C Wu, Y H Chen et al. Active dielectric metasurface based on phase-change medium. Laser Photonics Rev, 10, 986-994(2016).

    [11] Y J Bao, S Zu, W Liu, L Zhou, X Zhu et al. Revealing the spin optics in conic-shaped metasurfaces. Phys Rev B, 95, 081406(2017).

    [12] Q Jiang, Y J Bao, F Lin, X Zhu, S Zhang et al. Spin-controlled integrated near- and far-field optical launcher. Adv Funct Mater, 28, 1705503(2018).

    [13] X G Luo. Principles of electromagnetic waves in metasurfaces. Sci China Phys Mech Astron, 58, 594201(2015).

    [14] G Ohman. The pseudo-brewster angle. IEEE Trans Antennas Propag, 25, 903-904(1977).

    [15] R M A Azzam. Complex reflection coefficients of p- and s-polarized light at the pseudo-Brewster angle of a dielectric-conductor interface. J Opt Soc Am A, 30, 1975-1979(2013).

    [16] X L Liu, T Tyler, T Starr, A F Starr, N M Jokerst et al. Taming the blackbody with infrared metamaterials as selective thermal emitters. Phys Rev Lett, 107, 045901(2011).

    [17] A G Worthing. Deviation from lambert's law and polarization of light emitted by incandescent tungsten, tantalum and molybdenum and changes in the optical constants of tungsten with temperature. J Opt Soc Am, 13, 635-649(1926).

    [18] J L Pezzaniti, D Chenault, K Gurton, M Felton. Detection of obscured targets with IR polarimetric imaging. Proc SPIE, 90721D(2014).

    [19] J S Tyo, D L Goldstein, D B Chenault, J A Shaw. Review of passive imaging polarimetry for remote sensing applications. Appl Opt, 45, 5453-5469(2006).

    [20] K L Wang, D M Mittleman. Metal wires for terahertz wave guiding. Nature, 432, 376-379(2004).

    [21] M B Pu, Y H Guo, X Li, X L Ma, X G Luo. Revisitation of extraordinary young's interference: from catenary optical fields to spin-orbit interaction in metasurfaces. ACS Photonics, 5, 3198-3204(2018).

    [22] X G Luo. Subwavelength artificial structures: opening a new era for engineering optics. Adv Mater, 25, 1804680(2019).

    [23] X G Luo, D Tsai, M Gu, M H Hong. Subwavelength interference of light on structured surfaces. Adv Opt Photonics, 10, 757-842(2018).

    [24] M Rahmani, G Leo, I Brener, A V Zayats, S A Maier et al. Nonlinear frequency conversion in optical nanoantennas and metasurfaces: materials evolution and fabrication. Opto-Electron Adv, 1, 180021(2018).

    [25] et al. Heat Resisting Metallic MetaSkin for Simultaneous Microwave Broadband Scattering and Infrared Invisibility Based on Catenary Optical Field. Adv Mater Technol, 1800612 (2018). https://doi.org/10.1002/admt.201800612XieXPuM BHuangY JMaX LLiXet alHeat Resisting Metallic Meta‐Skin for Simultaneous Microwave Broadband Scattering and Infrared Invisibility Based on Catenary Optical Field. Adv Mater Technol, 1800612 (2018) https://doi.org/10.1002/admt.201800612

    [26] CST Microwave Studios. CST-Computer Simulation Technology AG, 2013.CST Microwave Studios. CST-Computer Simulation Technology AG, 2013

    [27] S Granick, Y X Zhu, H Lee. Slippery questions about complex fluids flowing past solids. Nat Mater, 2, 221-227(2003).

    [28] M B Pu, X Li, Y H Guo, X L Ma, X G Luo. Nanoapertures with ordered rotations: symmetry transformation and wide-angle flat lensing. Opt Express, 25, 31471-31477(2017).

    [29] Y H Guo, X L Ma, M B Pu, X Li, Z Y Zhao et al. High-efficiency and wide‐angle beam steering based on catenary optical fields in ultrathin metalens. Adv Opt Mater, 6, 1800592(2018).

    [30] O Sandus. A review of emission polarization. Appl Opt, 4, 1634-1642(1965).

    [31] J J Greffet, R Carminati, K Joulain, J P Mulet, S Mainguy. Coherent emission of light by thermal sources. Nature, 416, 61-64(2002).

    [32] K Joulain, J P Mulet, F Marquier, R Carminati, J J Greffet. Surface electromagnetic waves thermally excited: radiative heat transfer, coherence properties and Casimir forces revisited in the near field. Surf Sci Rep, 57, 59-112(2005).

    [33] J A Jr Polo, A Lakhtakia. Surface electromagnetic waves: a review. Laser Photonics Rev, 5, 234-246(2011).

    [34] H M Barlow, A L Cullen. Surface waves. Proc IEE - Part III Radio Commun Eng, 100, 329-341(1953).

    [35] J Shin, J T Shen, P B Catrysse, S H Fan. Cut-through metal slit array as an anisotropic metamaterial film. IEEE J Sel Top Quantum Electron, 12, 1116-1122(2006).

    [36] E Plum, V A Fedotov, N I Zheludev. Optical activity in extrinsically chiral metamaterial. Appl Phys Lett, 93, 191911(2008).

    [37] M B Pu, P Chen, Y Q Wang, Z Y Zhao, C Huang et al. Anisotropic meta-mirror for achromatic electromagnetic polarization manipulation. Appl Phys Lett, 102, 131906(2013).

    [38] N K Grady, J E Heyes, D R Chowdhury, Y Zeng, M T Reiten et al. Terahertz metamaterials for linear polarization conversion and anomalous refraction. Science, 340, 1304-1307(2013).

    Xiaoliang Ma, Mingbo Pu, Xiong Li, Yinghui Guo, Xiangang Luo. All-metallic wide-angle metasurfaces for multifunctional polarization manipulation[J]. Opto-Electronic Advances, 2019, 2(3): 180023
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