• Chinese Journal of Lasers
  • Vol. 48, Issue 2, 0202018 (2021)
Heng Guo1, Jianfeng Yan1、*, Xin Li2, and Liangti Qu1、3
Author Affiliations
  • 1Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China
  • 2School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China
  • 3Department of Chemistry, Tsinghua University, Beijing 100084, China
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    DOI: 10.3788/CJL202148.0202018 Cite this Article Set citation alerts
    Heng Guo, Jianfeng Yan, Xin Li, Liangti Qu. Patterned Graphene Oxide by Spatially-Shaped Femtosecond Laser[J]. Chinese Journal of Lasers, 2021, 48(2): 0202018 Copy Citation Text show less
    SLM-based optical system for space shaping and processing of femtosecond laser, and phase calculation algorithm. (a) Optical system for space shaping and processing of femtosecond laser; (b) schematic illustration of G-S iteration algorithm
    Fig. 1. SLM-based optical system for space shaping and processing of femtosecond laser, and phase calculation algorithm. (a) Optical system for space shaping and processing of femtosecond laser; (b) schematic illustration of G-S iteration algorithm
    Comparison of processing results of two methods. (a) Two phases loaded on SLM and corresponding optical field distributions (load calculated phase to obtain spatially shaped laser and load plane phase to obtain Gaussian laser); (b) micromorphology of region irradiated by spatially shaped laser; (c) micromorphology of region for laser point-by-point scanning; (d) height distribution of spatially shaped laser irradiated pattern; (e) height distribution of region for laser point-by-point scanning
    Fig. 2. Comparison of processing results of two methods. (a) Two phases loaded on SLM and corresponding optical field distributions (load calculated phase to obtain spatially shaped laser and load plane phase to obtain Gaussian laser); (b) micromorphology of region irradiated by spatially shaped laser; (c) micromorphology of region for laser point-by-point scanning; (d) height distribution of spatially shaped laser irradiated pattern; (e) height distribution of region for laser point-by-point scanning
    Processing results of spatially shaped laser irradiation method under different irradiation time and laser fluence. (a) Micromorphology of processing results under different irradiation time and laser fluence; (b) Raman spectra of processed regions (normalized based on intensity of peak G); (c) variations of ID/IG and I2D/IG with irradiation time
    Fig. 3. Processing results of spatially shaped laser irradiation method under different irradiation time and laser fluence. (a) Micromorphology of processing results under different irradiation time and laser fluence; (b) Raman spectra of processed regions (normalized based on intensity of peak G); (c) variations of ID/IG and I2D/IG with irradiation time
    Laser point-by-point scanning results under different laser fluence and scanning speed. (a) Micromorphologies of processed region for different fluence and scanning speed; (b) Raman spectra after scanning by laser under varying fluence; (c) variations of ID/IG and I2D/IG with laser fluence
    Fig. 4. Laser point-by-point scanning results under different laser fluence and scanning speed. (a) Micromorphologies of processed region for different fluence and scanning speed; (b) Raman spectra after scanning by laser under varying fluence; (c) variations of ID/IG and I2D/IG with laser fluence
    Patterns of three letters fabricated by spatially shaped laser irradiation. (a) Phases corresponding to three letters; (b) simulated optical fields at focused point corresponding to three phase patterns; (c)--(e) micromorphologies of three letter patterns obtained by spatially shaped laser irradiation and local amplification maps
    Fig. 5. Patterns of three letters fabricated by spatially shaped laser irradiation. (a) Phases corresponding to three letters; (b) simulated optical fields at focused point corresponding to three phase patterns; (c)--(e) micromorphologies of three letter patterns obtained by spatially shaped laser irradiation and local amplification maps
    Heng Guo, Jianfeng Yan, Xin Li, Liangti Qu. Patterned Graphene Oxide by Spatially-Shaped Femtosecond Laser[J]. Chinese Journal of Lasers, 2021, 48(2): 0202018
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