• Laser & Optoelectronics Progress
  • Vol. 50, Issue 7, 71602 (2013)
Chen Yuanhao*, Liu Guiqiang, Huang Kuan, Hu Ying, Zhang Xiangnan, and Cai Zhengjie
Author Affiliations
  • [in Chinese]
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    DOI: 10.3788/lop50.071602 Cite this Article Set citation alerts
    Chen Yuanhao, Liu Guiqiang, Huang Kuan, Hu Ying, Zhang Xiangnan, Cai Zhengjie. Investigation of Optical Transparent Properties of Sub-Wavelength Complex Structure of a Metal Ellipsoid Periodic Array and a Metal Film[J]. Laser & Optoelectronics Progress, 2013, 50(7): 71602 Copy Citation Text show less
    References

    [1] Zhang Bingxin, Chen Shufen, Fu Lei, et al.. A temperature-controlled tunable plasmonic dual-band absorber [J]. Acta Optica Sinica, 2012, 32(7): 0723005.

    [2] Peng Yang, Hou Jing, Huang Zhihe, et al.. Using surface plasmon resonance to control the reflection index of mirror [J]. Acta Optica Sinica, 2012, 32(1): 0124001.

    [3] Li Zhiquan, Zhu Jun, Niu Liyong, et al.. Manufacture of SPASER amplifier with metal-insulator-metal structure [J]. Acta Optica Sinica, 2012, 32(8): 0823002.

    [4] T W Ebbesen, H J Lezec, H F Ghaemi, et al.. Extraordinary optical transmission through sub-wavelength hole arrays [J]. Nature, 1998, 391(6668): 667-669.

    [5] W-C Tan, T W Preist, R J Sambles. Resonant tunneling of light through thin metal films via strongly localized surface plasmons [J]. Phys Rev B, 2000, 62(16): 11134-11138.

    [6] Z Sun, X Zuo. Tunable absorption of light via localized plasmon resonances on a metal surface with interspaced ultra-thin metal gratings [J]. Plasmonics, 2011, 6(1): 83-89.

    [7] S A Darmanyan, A V Zayats. Light tunneling via resonant surface plasmon polariton states and the enhanced transmission of periodically nanostructured metal films: an analytical study [J]. Phys Rev B, 2003, 67(3): 035424.

    [8] Y C Lan. Optical tunneling effect of localized surface plasmon: a simulation study using particle-in-cell method [J]. Appl Phys Lett, 2006, 88(7): 071109.

    [9] I Avrutsky, Y Zhao, V Kochergin. Surface-plasmon-assisted resonant tunneling of light through a periodically corrugated thin metal film [J]. Opt Lett, 2000, 25(9): 595-597.

    [10] N Bonod, S Enoch, L Li, et al.. Resonant optical transmission through thin metallic films with and without holes [J]. Opt Express, 2003, 11(5): 482-490.

    [11] B F Bai, L F Li, L J Zeng. Experimental verification of enhanced transmission through two-dimensionally corrugated metallic films without holes [J]. Opt Lett, 2005, 30(18): 2360-2362.

    [12] S A Maier, H A Atwater. Plasmonics: localization and guiding of electromagnetic energy in metal/dielectric structures [J]. J Appl Phys, 2005, 98(1): 011101.

    [13] F Wang, Y R Shen. General properties of local plasmons in metal nanostructures [J]. Phys Rev Lett, 2006, 97(20): 206806.

    [14] J Cesario, R Quidant, G Badenes, et al.. Electromagnetic coupling between a metal nanoparticle grating and a metallic surface [J]. Opt Lett, 2005, 30(24): 3404-3406.

    [15] A Hohenau, J R Krenn, J Beermann, et al.. Spectroscopy and nonlinear microscopy of Au nanoparticle arrays: experiment and theory [J]. Phys Rev B, 2006, 73(15): 155404.

    [16] Chen Yuanhao, Liu Guiqiang, Gong Lixia, et al.. Optical properties and fluorescence modification of the sandwich structure composed of ultra-thin gold films, light-emitting layers and photonic crystals [J]. Acta Optica Sinica, 2012, 32(10): 1016001.

    [17] N Papanikolaou. Optical properties of metallic nanoparticle arrays on a thin metallic film [J]. Phys Rev B, 2007, 75(23): 235426.

    [18] N Félidj, J Aubard, G Levi, et al.. Enhanced substrate-induced coupling in two-dimensional gold nanoparticle arrays [J]. Phys Rev B, 2002, 66(24): 245407.

    [19] S Xie, H Li, S Fu, et al.. Surface plasmon tunneling through a touching gold nanocylinder array on a thin gold film [J]. Opt Commun, 2011, 284(7): 2036-2041.

    [20] Chen Juan, Yan Lianshan, Pan Wei, et al.. Comparison of transmission properties of two kinds of subwavelength metallic wave plates [J]. Acta Optica Sinica, 2012, 32(4): 0405001.

    [21] P Drude. Zur elektronentheorie der metalle [J]. Ann Phys, 1900, 306(3): 566-613.

    [22] Cao Qing, Philippe Lalanne. Negative role of surface plasmons in the transmission of metallic gratings with very narrow slits [J]. Phys Rev Lett, 2002, 88(5): 057403.

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    Chen Yuanhao, Liu Guiqiang, Huang Kuan, Hu Ying, Zhang Xiangnan, Cai Zhengjie. Investigation of Optical Transparent Properties of Sub-Wavelength Complex Structure of a Metal Ellipsoid Periodic Array and a Metal Film[J]. Laser & Optoelectronics Progress, 2013, 50(7): 71602
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