Chinese Journal of Lasers, Volume. 41, Issue 1, 116004(2014)
Design and Error Analysis of Sub-Wavelength Antireflective Micro-Structure on Surface of ZnSe Substrate
[1] [1] D W Zhang, Z W Lu, W X Yu, et al.. Electromagnetic diffraction analysis of 2-D antireflective subwavelength grating with coned profile[J]. Chinese J Lasers, 2002, 11(4): 273-280.
[2] [2] D S Hobbs, B D Macleod, J R Riccobono. Update on the development of high performance anti-reflecting surface relief micro-structures[C]. SPIE, 2007, 6545: 65450Y.
[3] [3] Zhong Minlin, Fan Peixun. Applications of laser nano manufacturing technologies[J]. Chinese J Lasers, 2011, 38(6): 0601001.
[4] [4] D Maystre. A new general integral theory for dielectric coated gratings[J]. J Opt Soc Am, 1978, 68(4): 490-495.
[5] [5] R Petit. Electromagnetic Theory of Gratings[M]. Berlin: Springer-Veriag, 1980.
[6] [6] M Neviere, R Petit, M Cadinhac, et al.. About the theory of optical grating coupler-waveguide systems[J]. Opt Commun, 1973, 8(2): 113-117.
[7] [7] M G Moharam, D A Pommet, E B Grann, et al.. Stable implementation of the rigorous coupled-wave analysis for surface-relif gratings: enhanced transmittance matrix approach[J]. J Opt Soc Am A, 1995, 12(5): 1077-1086.
[8] [8] M G Moharam, E B Grann, D A Pommet, et al.. Formulation for stable and efficient implementation of the rigorous coupled-wave analysis of binary gratings[J]. J Opt Soc Am A, 1995, 12(5): 1068-1076.
[9] [9] P Lalanne. Improved formulation of the coupled-wave method for two-dimensional gratings[J]. J Opt Soc Am A, 1997, 14(7): 1592-1598.
[10] [10] M G Moharam, T K Gaylord. Three-dimensional vector coupled-wave analysis of planar grating diffraction[J]. J Opt Soc Am, 1983, 73(9): 1105-1112.
[11] [11] L F Li. Note on the S-matrix propagation algorithm[J]. J Opt Soc Am A, 2003, 20(4): 655-660.
[12] [12] E B Grann, M G Moharam, D A Pommet. Artificial uniaxial and biaxial dielectrics with use of two-dimensional sub-wavelength binary gratings[J]. J Opt Soc Am A, 1994, 11(10): 2695-2703.
[13] [13] L F Li. Use of Fourier series in the analysis of discontinuous period structures[J]. J Opt Soc Am A, 1996, 13(9): 1870-1876.
[14] [14] D S Hobbs, B D MacLeod. Design, fabrication and measured performance of anti-reflecting surface textures in infrared transmitting materials[C]. SPIE, 2005, 5786: 349-364.
[15] [15] B D MacLeod, D S Hobbs. Low-cost anti-reflection technology for automobile displays[C]. Journal of the Society for Information Display, Automotive Display Conference, 2004.
[16] [16] D A Pommet, E B Grann, M G Moharam. Effects of process errors on the diffraction characteristics of binary dielectric gratings[J]. Appl Opt, 1995, 34(14): 2430-2435.
[17] [17] D Lehr, M Helgert, M Sundermann, et al.. Simulating different manufactured antireflective sub-wavelength structures considering the influence of local topographic variations[J]. Opt Express, 2010, 18(23): 23878-23890.
[19] [19] D W Zhang, Z W Lu, W X Yu, et al.. Electromagnetic diffraction analysis of columned grid gratings[J]. J Opt A: Pure Appl Opt, 2002, 4(2): 180-186.
[21] [21] Yu Weixing, Lu Zhenwu, Wang Peng, et al.. Vector diffracted characteristic of tapered profile two dimensional subwavelength surface-relief structure[J]. Acta Photonica Sinica, 2001, 30(3): 331-335.
[22] [22] Cao Zhaoliang, Lu Zhenwu, Li Fengyou, et al.. Analysis of fabrication error of subwavelength dielectric gratings[J]. Acta Photonica Sinica, 2004, 33(1): 76-80.
Get Citation
Copy Citation Text
Shang Peng, Xiong Shengming. Design and Error Analysis of Sub-Wavelength Antireflective Micro-Structure on Surface of ZnSe Substrate[J]. Chinese Journal of Lasers, 2014, 41(1): 116004
Category: Optical Design and Fabrication
Received: May. 24, 2013
Accepted: --
Published Online: Dec. 24, 2013
The Author Email: Peng Shang (shangpeng163@163.com)