Search

Article

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Middle-wave infrared and broadband polarization conversion based on metamaterial

Jin Ke Liu Yong-Qiang Han Jun Yang Chong-Min Wang Ying-Hui Wang Hui-Na

Citation:

Middle-wave infrared and broadband polarization conversion based on metamaterial

Jin Ke, Liu Yong-Qiang, Han Jun, Yang Chong-Min, Wang Ying-Hui, Wang Hui-Na
PDF
Get Citation

(PLEASE TRANSLATE TO ENGLISH

BY GOOGLE TRANSLATE IF NEEDED.)

  • The polarization state is one of the most important basic properties of the electromagnetic wave. Researchers have made great efforts to manipulate it. Control of the polarization state of an electromagnetic wave is a promising promotion for figuring out many practical engineering problems in infrared remote sensing, optical communication and infrared target recognition. In this paper, we propose a wide-band and high-efficient linear-polarization converter on the basis of the metamaterial, which is comprised of silicon nanorod array and subwavelength metal grating that can realize a 90 polarization converter of linearly polarized light and is composed of silicon nanorod array cascade subwavelength metal grating:on one side of design located is the cuboid silicon nanorod array, on the other side of the design the subwavelength metallic grating on the silicon substrate, and the angle between silicon nanorod array and subwavelength metal grating is 45. Because of the deference in geometrical dimension between the long axis and the short axis of the nanorod, results of the equivalent refractive index of the long axis direction and the short axis direction are different, and the anisotropic birefrigent effect is formed. Based on the Jones matrix, the feasibility of polarization converter is described. The polarization converter efficiency and polarization state of the structure are simulated and analyzed by the finite-difference time-domain method. And the variation characteristics of polarization converter transmittance are simulated under several nanorod with different heights and widths. In order to improve the contrast ratio and the transmission, the effective medium theory is used to design the metal grating for improving the transmission. According to the theory of optical thin film, we design the subwavelength metal grating with suitable duty cycle as the anti-reflection coating. The simulation results show that the structure can realize 90 rotation of linearly polarized light, the polarization converter efficiency is greater than 60% in a spectral range of 3.4-4.5 m and the contrast ratio is greater than 104 in a spectral range of 3-5 m. This structure can effectively realize the 90 polarization conversion in the spectral range of medium wave infrared and has the advantages of high conversion efficiency and high contrast ratio. In addition, the range of spectral of polarization conversion can be changed by adjusting the height and width of the nanorod. It can be applied to optical transmission control of optical network and optical information system, because of its excellent optical performance with the advantages of high polarization conversion efficiency and wide band in the mid-infrared waveband and low preparation difficulty.
      Corresponding author: Jin Ke, jinkegoodman@163.com
    [1]

    Zhao H J, Yang S L, Zhang D 2009 Acta Phys. Sin. 58 6236 (in Chinese)[赵华君, 杨守良, 张东 2009 物理学报 58 6236]

    [2]

    Chen J, Yan L S, Pan W, Luo B, Guo Z 2011 Acta Opt. Sin. 31 1224001 (in Chinese)[陈娟, 闫连山, 潘炜, 罗斌, 郭振 2011 光学学报 31 1224001]

    [3]

    Sundaram C M, Prabakaran K, Anbarasan P M, Rajesh K B, Musthafa A M 2016 Chin. Phys. Lett. 33 64203

    [4]

    Dong C, Li B, Li H X, Liu H, Chen M Q, Li D D, Yan C C, Zhang D H 2016 Chin. Phys. Lett. 33 74201

    [5]

    Wang P, Shang Y P, Li X, Xu X J 2015 Chin. J. Lasers 42 116002 (in Chinese)[王鹏, 尚亚萍, 李霄, 许晓军 2015 中国激光 42 116002]

    [6]

    Li C Z, Wu B J 2010 Acta Opt. Sin. 30 3153 (in Chinese)[李崇真, 武保剑 2010 光学学报 30 3153]

    [7]

    Han J F, Cao X Y, Gao J, Li S J, Zhang C 2016 Acta Phys. Sin. 65 044201 (in Chinese)[韩江枫, 曹祥玉, 高军, 李思佳, 张晨 2016 物理学报 65 044201]

    [8]

    Wang G D, Liu M H, Hu X W, Kong L H, Cheng L L, Chen Z Q 2014 Chin. Phys. B 23 017802

    [9]

    Fan Y N, Cheng Y Z, Nie Y, Wang X, Gong R Z 2013 Chin. Phys. B 22 067801

    [10]

    Schurig D, Mock J J, Justice B J, Cummer S A, Pendry J B, Starr A F, Smith D R 2006 Science 314 977

    [11]

    Yang H H, Cao X Y, Gao J, Liu T, Li W Q 2013 Acta Phys. Sin. 62 064103 (in Chinese)[杨欢欢, 曹祥玉, 高军, 刘涛, 李文强 2013 物理学报 62 064103]

    [12]

    Li S J, Gao J, Cao X Y, Zhang Z, Zheng Y J, Zhang C 2015 Opt. Express 23 3523

    [13]

    Huang Ch P 2015 Opt. Express 23 251150

    [14]

    Genet C, Ebbesen T W 2007 Nature 445 39

    [15]

    Cong L, Cao W, Zhang X, Tian Z, Han J, Zhang W 2013 Appl. Phys. Lett. 103 171107

    [16]

    Huang C P, Wang Q J, Yin X G, Zhang Y, Li J Q, Zhu Y Y 2014 Adv. Opt. Mater. 2 723

    [17]

    Cheng H, Chen S Q, Yu P, Li J X, Xie B Y, Li Z C, Tian J G 2013 Appl. Phys. Lett. 103 223102

    [18]

    Dong G X, Shi H Y, Xia S, Li W, Zhang A X, Xu Z, Wei X Y 2016 Chin. Phys. B 25 084202

    [19]

    Wu J L, Lin B Q, Da X Y 2016 Chin. Phys. B 25 088101

    [20]

    Zhu Z H, Liu K, Xu W, Luo Z, Guo C C, Yang B, Ma T, Yuan X D, Ye W M 2012 Opt. Lett. 37 4008

    [21]

    Liao Y L, Zhao Y 2014 Opt. Quant. Electron. 46 641

  • [1]

    Zhao H J, Yang S L, Zhang D 2009 Acta Phys. Sin. 58 6236 (in Chinese)[赵华君, 杨守良, 张东 2009 物理学报 58 6236]

    [2]

    Chen J, Yan L S, Pan W, Luo B, Guo Z 2011 Acta Opt. Sin. 31 1224001 (in Chinese)[陈娟, 闫连山, 潘炜, 罗斌, 郭振 2011 光学学报 31 1224001]

    [3]

    Sundaram C M, Prabakaran K, Anbarasan P M, Rajesh K B, Musthafa A M 2016 Chin. Phys. Lett. 33 64203

    [4]

    Dong C, Li B, Li H X, Liu H, Chen M Q, Li D D, Yan C C, Zhang D H 2016 Chin. Phys. Lett. 33 74201

    [5]

    Wang P, Shang Y P, Li X, Xu X J 2015 Chin. J. Lasers 42 116002 (in Chinese)[王鹏, 尚亚萍, 李霄, 许晓军 2015 中国激光 42 116002]

    [6]

    Li C Z, Wu B J 2010 Acta Opt. Sin. 30 3153 (in Chinese)[李崇真, 武保剑 2010 光学学报 30 3153]

    [7]

    Han J F, Cao X Y, Gao J, Li S J, Zhang C 2016 Acta Phys. Sin. 65 044201 (in Chinese)[韩江枫, 曹祥玉, 高军, 李思佳, 张晨 2016 物理学报 65 044201]

    [8]

    Wang G D, Liu M H, Hu X W, Kong L H, Cheng L L, Chen Z Q 2014 Chin. Phys. B 23 017802

    [9]

    Fan Y N, Cheng Y Z, Nie Y, Wang X, Gong R Z 2013 Chin. Phys. B 22 067801

    [10]

    Schurig D, Mock J J, Justice B J, Cummer S A, Pendry J B, Starr A F, Smith D R 2006 Science 314 977

    [11]

    Yang H H, Cao X Y, Gao J, Liu T, Li W Q 2013 Acta Phys. Sin. 62 064103 (in Chinese)[杨欢欢, 曹祥玉, 高军, 刘涛, 李文强 2013 物理学报 62 064103]

    [12]

    Li S J, Gao J, Cao X Y, Zhang Z, Zheng Y J, Zhang C 2015 Opt. Express 23 3523

    [13]

    Huang Ch P 2015 Opt. Express 23 251150

    [14]

    Genet C, Ebbesen T W 2007 Nature 445 39

    [15]

    Cong L, Cao W, Zhang X, Tian Z, Han J, Zhang W 2013 Appl. Phys. Lett. 103 171107

    [16]

    Huang C P, Wang Q J, Yin X G, Zhang Y, Li J Q, Zhu Y Y 2014 Adv. Opt. Mater. 2 723

    [17]

    Cheng H, Chen S Q, Yu P, Li J X, Xie B Y, Li Z C, Tian J G 2013 Appl. Phys. Lett. 103 223102

    [18]

    Dong G X, Shi H Y, Xia S, Li W, Zhang A X, Xu Z, Wei X Y 2016 Chin. Phys. B 25 084202

    [19]

    Wu J L, Lin B Q, Da X Y 2016 Chin. Phys. B 25 088101

    [20]

    Zhu Z H, Liu K, Xu W, Luo Z, Guo C C, Yang B, Ma T, Yuan X D, Ye W M 2012 Opt. Lett. 37 4008

    [21]

    Liao Y L, Zhao Y 2014 Opt. Quant. Electron. 46 641

  • [1] Jin Jia-Sheng, Ma Cheng-Ju, Zhang Yao, Zhang Yue-Bin, Bao Shi-Qian, Li Mi, Li Dong-Ming, Liu Ming, Liu Qian-Zhen, Zhang Yi-Xin. Switchable multifunctional terahertz metamaterial with slow-light and absorption functions based on phase change materials. Acta Physica Sinica, 2023, 72(8): 084202. doi: 10.7498/aps.72.20222336
    [2] Wei Jin-Zhi, Wang Jin-Hao, Chen Jun-Xue. Coherent control of polarization transformation of Bloch surface waves. Acta Physica Sinica, 2023, 72(21): 214201. doi: 10.7498/aps.72.20231050
    [3] Chen Wen-Bo, Chen He-Ming. Terahertz liquid crystal phase shifter based on metamaterial composite structure. Acta Physica Sinica, 2022, 71(17): 178701. doi: 10.7498/aps.71.20212400
    [4] Ge Hong-Yi, Li Li, Jiang Yu-Ying, Li Guang-Ming, Wang Fei, Lü Ming, Zhang Yuan, Li Zhi. Double-opening metal ring based terahertz metamaterial absorber sensor. Acta Physica Sinica, 2022, 71(10): 108701. doi: 10.7498/aps.71.20212303
    [5] Liu Jing-Yu, Li Wen-Yu, Liu Zhi-Xing, Shu Jing-Yi, Zhao Guo-Zhong. Transmission polarization converter based on V-shaped metasurface in terahertz region. Acta Physica Sinica, 2022, 71(23): 230701. doi: 10.7498/aps.71.20221259
    [6] Jiang Xiao-Wei, Wu Hua. Metamaterial absorber with controllable absorption wavelength and absorption efficiency. Acta Physica Sinica, 2021, 70(2): 027804. doi: 10.7498/aps.70.20201173
    [7] Hu Bao-Jing, Huang Ming, Li Peng, Yang Cheng-Fu. Multiband plasmon-induced transparency based on silver nanorods and nanodisk hybrid model. Acta Physica Sinica, 2020, 69(13): 134202. doi: 10.7498/aps.69.20200093
    [8] Cui Tie-Jun, Wu Hao-Tian, Liu Shuo. Research progress of information metamaterials. Acta Physica Sinica, 2020, 69(15): 158101. doi: 10.7498/aps.69.20200246
    [9] Fu Ya-Nan, Zhang Xin-Qun, Zhao Guo-Zhong, Li Yong-Hua, Yu Jia-Yi. A broadband polarization converter based on resonant ring in terahertz region. Acta Physica Sinica, 2017, 66(18): 180701. doi: 10.7498/aps.66.180701
    [10] Wang Zhao-Kun, Yang Zhen-Yu, Tao Huan, Zhao Ming. High-efficiency wavefront control with based on helical metamaterials. Acta Physica Sinica, 2016, 65(21): 217802. doi: 10.7498/aps.65.217802
    [11] Zhang Xiao-Xu, Zhang Sheng-Hai, Wu Tian-An, Sun Wei-Yang. Polarization switching characteristics of polarization maintaining optical feedback and orthogonal optical injection of 1550 nm-VCSEL. Acta Physica Sinica, 2016, 65(21): 214206. doi: 10.7498/aps.65.214206
    [12] Yang Lei, Fan Fei, Chen Meng, Zhang Xuan-Zhou, Chang Sheng-Jiang. Multifunctional metasurfaces for terahertz polarization controller. Acta Physica Sinica, 2016, 65(8): 080702. doi: 10.7498/aps.65.080702
    [13] Xu Xin-He, Liu Ying, Gan Yue-Hong, Liu Wen-Miao. A method of retrieving the constitutive parameter matrix of magnetoelectric coupling metamaterial. Acta Physica Sinica, 2015, 64(4): 044101. doi: 10.7498/aps.64.044101
    [14] Zhou Zhen-Li, Xia Guang-Qiong, Deng Tao, Zhao Mao-Rong, Wu Zheng-Mao. Multiple polarization switching in mutually coupled vertical-cavity surface emitting lasers. Acta Physica Sinica, 2015, 64(2): 024208. doi: 10.7498/aps.64.024208
    [15] Zhong Dong-Zhou, Ji Yong-Qiang, Deng Tao, Zhou Kai-Li. Manipulation of the polarization switching and the nonlinear dynamic behaviors of the vertical-cavity surface-emitting laser subjected to optical injection by EO modulation. Acta Physica Sinica, 2015, 64(11): 114203. doi: 10.7498/aps.64.114203
    [16] Zou Tao-Bo, Hu Fang-Rong, Xiao Jing, Zhang Long-Hui, Liu Fang, Chen Tao, Niu Jun-Hao, Xiong Xian-Ming. Design of a polarization-insensitive and broadband terahertz absorber using metamaterials. Acta Physica Sinica, 2014, 63(17): 178103. doi: 10.7498/aps.63.178103
    [17] Liu Ya-Hong, Fang Shi-Lei, Gu Shuai, Zhao Xiao-Peng. Multiband and broadband metamterial absorbers. Acta Physica Sinica, 2013, 62(13): 134102. doi: 10.7498/aps.62.134102
    [18] Shen Xiao-Peng, Cui Tie-Jun, Ye Jian-Xiang. Dual band metamaterial absorber in microwave regime. Acta Physica Sinica, 2012, 61(5): 058101. doi: 10.7498/aps.61.058101
    [19] Sun Liang-Kui, Cheng Hai-Feng, Zhou Yong-Jiang, Wang Jun, Pang Yong-Qiang. Design and preparation of a radar-absorbing material based on metamaterial. Acta Physica Sinica, 2011, 60(10): 108901. doi: 10.7498/aps.60.108901
    [20] Fu Fei-Ya, Chen Wei, Zhou Wen-Jun, Liu An-Jin, Xing Ming-Xin, Wang Yu-Fei, Zheng Wan-Hua. Electromagnetic resonance in nanosandwich photonic metamaterial. Acta Physica Sinica, 2010, 59(12): 8579-8583. doi: 10.7498/aps.59.8579
Metrics
  • Abstract views:  5353
  • PDF Downloads:  366
  • Cited By: 0
Publishing process
  • Received Date:  18 January 2017
  • Accepted Date:  01 May 2017
  • Published Online:  05 July 2017

/

返回文章
返回