• Laser & Optoelectronics Progress
  • Vol. 59, Issue 15, 1516019 (2022)
Xiaohan Yu1、2, Dongfeng Qi1、*, Wenju Zhou3, Mengxia Chen3, Xiang Shen3, Shixun Dai3, and Hongyu Zheng1、**
Author Affiliations
  • 1School of Mechanical Engineering, Shandong University of Technology, Zibo 255000, Shandong , China
  • 2State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 3Laboratory of Infrared Materials and Devices, Ningbo University, Ningbo 315211, Zhejiang , China
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    DOI: 10.3788/LOP202259.1516019 Cite this Article Set citation alerts
    Xiaohan Yu, Dongfeng Qi, Wenju Zhou, Mengxia Chen, Xiang Shen, Shixun Dai, Hongyu Zheng. Fabrication of Periodic Nanostructures on the Surface of Chalcogenide Glass using Ultrafast Laser[J]. Laser & Optoelectronics Progress, 2022, 59(15): 1516019 Copy Citation Text show less
    Femtosecond laser direct writing system
    Fig. 1. Femtosecond laser direct writing system
    SEM images of different laser energy densities and pulse numbers
    Fig. 2. SEM images of different laser energy densities and pulse numbers
    Simulation results. (a) Schematic of initially formed LSFL structure; (b) electric field distribution on the material surface
    Fig. 3. Simulation results. (a) Schematic of initially formed LSFL structure; (b) electric field distribution on the material surface
    Evolution of laser direct writing induce LSFL on the surface of As2S3 with different overlap ratios and different energy densities
    Fig. 4. Evolution of laser direct writing induce LSFL on the surface of As2S3 with different overlap ratios and different energy densities
    Schematic diagram of the formation process of LSFL. (a) Formation region of two adjacent laser pulses directly writing LSFL; (b) LSFL structure formed by multiple laser pulses
    Fig. 5. Schematic diagram of the formation process of LSFL. (a) Formation region of two adjacent laser pulses directly writing LSFL; (b) LSFL structure formed by multiple laser pulses
    LSFL processed by femtosecond laser through large-area scanning under the focus of 2.5× objective lens.(a)-(c) Color effect of LSFL at different angles; (d) SEM image of large-area LSFL structure; (e) transmission spectra of large-area LSFL structures; (f) partial enlarged view of the 5-12 μm band
    Fig. 6. LSFL processed by femtosecond laser through large-area scanning under the focus of 2.5× objective lens.(a)-(c) Color effect of LSFL at different angles; (d) SEM image of large-area LSFL structure; (e) transmission spectra of large-area LSFL structures; (f) partial enlarged view of the 5-12 μm band
    Multi-angle diffraction experiment. (a) Schematic diagram of the color test system; (b)-(f) when the illumination angle is 34°, 40°, 53°, 62°, and 69°, the corresponding spectra under different rotation angles
    Fig. 7. Multi-angle diffraction experiment. (a) Schematic diagram of the color test system; (b)-(f) when the illumination angle is 34°, 40°, 53°, 62°, and 69°, the corresponding spectra under different rotation angles
    Preparation of snowflake-like structures on As2S3 glass materials. (a) Diffraction phenomenon occurs when natural light irradiates the periodic structures; (b)-(d) material surface exhibits different color effects at different angles
    Fig. 8. Preparation of snowflake-like structures on As2S3 glass materials. (a) Diffraction phenomenon occurs when natural light irradiates the periodic structures; (b)-(d) material surface exhibits different color effects at different angles
    Xiaohan Yu, Dongfeng Qi, Wenju Zhou, Mengxia Chen, Xiang Shen, Shixun Dai, Hongyu Zheng. Fabrication of Periodic Nanostructures on the Surface of Chalcogenide Glass using Ultrafast Laser[J]. Laser & Optoelectronics Progress, 2022, 59(15): 1516019
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