• High Power Laser Science and Engineering
  • Vol. 12, Issue 6, 06000e99 (2024)
Shoufei Gao1,2,4, Wenxiang Zha1,2, Yujun Feng3, Zhixi Liang1,2..., Yizhi Sun1,2,4, Xiaobo Yang3,* and Yingying Wang1,2,4,*|Show fewer author(s)
Author Affiliations
  • 1Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communication, Institute of Photonics Technology, Jinan University, Guangzhou, China
  • 2College of Physics and Optoelectronic Engineering, Jinan University, Guangzhou, China
  • 3Institute of Applied Electronics, China Academy of Engineering Physics, Mianyang, China
  • 4Linfiber Technology (Nantong) Co., Ltd., Nantong, China
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    DOI: 10.1017/hpl.2024.81 Cite this Article Set citation alerts
    Shoufei Gao, Wenxiang Zha, Yujun Feng, Zhixi Liang, Yizhi Sun, Xiaobo Yang, Yingying Wang, "All-fiber delivery of 100 W single-frequency laser through 100 m anti-resonant hollow-core fiber without stimulated Brillouin scattering," High Power Laser Sci. Eng. 12, 06000e99 (2024) Copy Citation Text show less
    Calculated coupling efficiency between the PLMA-GDF-25/250-M and AR-HCF with varying core diameter ranging from 20 to 40 μm. The mode-field profile is simulated via finite element method.
    Fig. 1. Calculated coupling efficiency between the PLMA-GDF-25/250-M and AR-HCF with varying core diameter ranging from 20 to 40 μm. The mode-field profile is simulated via finite element method.
    (a) SEM image of the in-house fabricated AR-HCF. (b) Microscope image of PLMA-GDF-25/250-M. Their near-field patterns are shown in (c) for AR-HCF and (d) for PLMA-GDF-25/250-M. (e) Measured transmission loss spectrum of the AR-HCF.
    Fig. 2. (a) SEM image of the in-house fabricated AR-HCF. (b) Microscope image of PLMA-GDF-25/250-M. Their near-field patterns are shown in (c) for AR-HCF and (d) for PLMA-GDF-25/250-M. (e) Measured transmission loss spectrum of the AR-HCF.
    (a) Schematic setup for power delivery. The single-frequency laser is composed of the seed, amplifier 1 and amplifier 2. The output of the laser is butt-coupled to the AR-HCF via ceramic ferrules on a five-axis adjustment stage. Two power meters monitor the backward and transmitted power intensity. (b) Packaging of the coupled AR-HCF and PLMA-GDF-25/250-M onto a high-hardness thermally conductive base with UV-curable glue. (c) Packaged PLMA-GDF-25/250-M and AR-HCF coupler. (d) Thermal imaging of the coupling area under maximum input laser power of 108 W.
    Fig. 3. (a) Schematic setup for power delivery. The single-frequency laser is composed of the seed, amplifier 1 and amplifier 2. The output of the laser is butt-coupled to the AR-HCF via ceramic ferrules on a five-axis adjustment stage. Two power meters monitor the backward and transmitted power intensity. (b) Packaging of the coupled AR-HCF and PLMA-GDF-25/250-M onto a high-hardness thermally conductive base with UV-curable glue. (c) Packaged PLMA-GDF-25/250-M and AR-HCF coupler. (d) Thermal imaging of the coupling area under maximum input laser power of 108 W.
    (a) Output power and throughput efficiency as functions of input pump power. (b) Beam quality and near-field pattern at maximum laser power output.
    Fig. 4. (a) Output power and throughput efficiency as functions of input pump power. (b) Beam quality and near-field pattern at maximum laser power output.
    (a) Comparison of high-power single-frequency laser transmission through four different lengths of PLMA-GDF-25/250-M and AR-HCF: (I) 1 m panda fiber; (II) 43 m panda fiber; (III) 1 m panda fiber and 1 m HC-ARF; (IV) 1 m panda fiber and 100 m HC-ARF. (b) Back-reflected light intensity curves from the four configurations. Note here that the I, III and IV curves strongly overlap.
    Fig. 5. (a) Comparison of high-power single-frequency laser transmission through four different lengths of PLMA-GDF-25/250-M and AR-HCF: (I) 1 m panda fiber; (II) 43 m panda fiber; (III) 1 m panda fiber and 1 m HC-ARF; (IV) 1 m panda fiber and 100 m HC-ARF. (b) Back-reflected light intensity curves from the four configurations. Note here that the I, III and IV curves strongly overlap.
    Shoufei Gao, Wenxiang Zha, Yujun Feng, Zhixi Liang, Yizhi Sun, Xiaobo Yang, Yingying Wang, "All-fiber delivery of 100 W single-frequency laser through 100 m anti-resonant hollow-core fiber without stimulated Brillouin scattering," High Power Laser Sci. Eng. 12, 06000e99 (2024)
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