• Chinese Journal of Lasers
  • Vol. 47, Issue 12, 1201005 (2020)
Wei Zhangfan1、2, Hu Jingpei1、2, Zhang Chong1、2, Dong Yangeng1、2, Zeng Aijun1、2, and Huang Huijie1、2
Author Affiliations
  • 1Laboratory of Information Optics and Optoelectronic Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.3788/CJL202047.1201005 Cite this Article Set citation alerts
    Wei Zhangfan, Hu Jingpei, Zhang Chong, Dong Yangeng, Zeng Aijun, Huang Huijie. Design and Fabrication of Polarizer Based on All-Dielectric Resonance-Domain Grating[J]. Chinese Journal of Lasers, 2020, 47(12): 1201005 Copy Citation Text show less
    Schematic diagram of resonance-domain grating structure based on SOI
    Fig. 1. Schematic diagram of resonance-domain grating structure based on SOI
    Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different grating periods. (a) Transmission curves; (b) extinction ratio curves
    Fig. 2. Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different grating periods. (a) Transmission curves; (b) extinction ratio curves
    Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different grating widths. (a) Transmission curves; (b) extinction ratio curves
    Fig. 3. Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different grating widths. (a) Transmission curves; (b) extinction ratio curves
    Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different etch depths. (a) Transmission curves; (b) extinction ratio curves
    Fig. 4. Transmission and extinction ratio variation curves of all-dielectric resonance-domain grating with different etch depths. (a) Transmission curves; (b) extinction ratio curves
    Transmission, reflection, and absorption variation curves of all-dielectric resonance-domain grating with different incident light wavelengths and cross section distributions of electric field inside grating at wavelength of 1.53μm under the normal incidence of different polarized lights. (a) (c) TM polarized light; (b) (d) TE polarized light
    Fig. 5. Transmission, reflection, and absorption variation curves of all-dielectric resonance-domain grating with different incident light wavelengths and cross section distributions of electric field inside grating at wavelength of 1.53μm under the normal incidence of different polarized lights. (a) (c) TM polarized light; (b) (d) TE polarized light
    Scanning electron micrograph of all-dielectric resonance-domain grating polarizer
    Fig. 6. Scanning electron micrograph of all-dielectric resonance-domain grating polarizer
    Schematic of polarization performance measurement for all-dielectric resonance-domain grating polarizer
    Fig. 7. Schematic of polarization performance measurement for all-dielectric resonance-domain grating polarizer
    Experimental results and simulation curves of all-dielectric resonance-domain grating polarizer. (a) Transmission of TM and TE polarized light; (b) extinction ratio
    Fig. 8. Experimental results and simulation curves of all-dielectric resonance-domain grating polarizer. (a) Transmission of TM and TE polarized light; (b) extinction ratio
    Wei Zhangfan, Hu Jingpei, Zhang Chong, Dong Yangeng, Zeng Aijun, Huang Huijie. Design and Fabrication of Polarizer Based on All-Dielectric Resonance-Domain Grating[J]. Chinese Journal of Lasers, 2020, 47(12): 1201005
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