Acta Optica Sinica (Online), Volume. 1, Issue 6, 0602001(2024)

Research Progress on Rare Earth Doped Fluoride Glass and Fiber Lasers in the Mid-Infrared Region (Invited)

Yu Dong... Pengfei Wang*, Shijie Jia, Zhi Zhang and Zhuowei Cheng |Show fewer author(s)
Author Affiliations
  • Key Laboratory of In-Fiber Integrated Optics, College of Physics and Optoelctronic Engineering, Harbin Engineering University, Harbin 150001, Heilongjiang , China
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    Figures & Tables(20)
    Typical structure of mid-infrared rare earth ion doped fiber laser
    DSC curves for AYF fiber undoped core and cladding composition[51], where Tg is glass transition temperature, Tx is crystallization temperature, and ΔT=Tx-Tg
    Transmission spectra of typical AlF3-based glasses before immersion and after drying[51]
    Raman spectra of AYF and ZBLAN glasses, and the dashes represent the multiple peaks' fitting results[51]
    Laser test results[51]. (a) Laser output power as a function of pump power; (b) laser spectrum at the highest pump power of ~20 W; (c) temporal dependence of the maximum output power at λ≈3 μm
    Laser output power at 2864 nm as a function of absorbed pump power at 1150 nm[57]
    Laser spectra obtained at output powers of 5, 367,604, and 977 mW (inset: laser spectrum obtained at an output power of 977 mW)[57]
    Spectra of ZBYA glass samples[31]. (a) Raman spectrum of undoped ZBYA glass sample; (b) transmission spectrum of 2.0 mm thick ZBYA glass
    DSC curves of ZBYA and ZBLAN samples and ZBYA fiber loss[31]. (a) DSC curves of ZBYA and ZBLAN glass samples and characteristic temperatures; (b) ZBYA fiber loss at 1570 nm
    Results of ZBYA glass immersion experiment[31]. Transmission spectra of (a) ZBLAN and (b) ZBYA glasses after leaching in deionized for different time; (c) spectral comparison of ZBLAN and ZBYA glass samples after 24 h leaching in deionized; (d) loss of weight comparison of ZBLAN and ZBYA glass samples after leaching in deionized water
    Laser spectra (both the fiber lengths are 1.8 m)[31]. (a) 1.2 μm optical spectra for various pump powers; (b) 2.9 μm laser spectra of 0.5% (mole fraction) Ho3+-doped ZBYA fiber
    Basic physicochemical properties of fluoroindate glass[55]. (a) Raman spectra of fluoroindate glass and ZBLAN glass; (b) differential scanning calorimetry curves in the temperature range of 100‒600 ℃; (c) refractive index curves of cladding and core glasses; (d) transmission spectra of core glass before and after immersing in deionized water
    Linear regression calculation results of sample glass damage threshold, and the inset shows laser-induced damage structure arrays under different laser powers on the fluoroindate sample[55] (D—diameter of the damaged crater; E—incident pulse energy)
    2.7 μm of Er-doped fluoroindate glass luminescence characteristics[55]. (a) Absorption cross section of the 4I15/2 →4I11/2 transition; (b) emission spectra of glasses with different Er3+concentrations obtained within the wavelength region of 2400‒3000 nm; (c) emission cross-section of the 4I11/2→4I13/2 transition; (d) luminescence decay curves of the 4I13/2 energy level
    Laser spectra[55]. (a) Output power as a function of the launched pump power, the inset shows laser spectrum centered at 2.7 μm of Er3+-doped fluoroindate glass fiber for a pump power of 1.5 W; (b) dependence of 2.7 μm laser slope efficiency on the fiber length of Er3+-doped fluoroindate glass fiber
    Laser output power as a function of launched pump power in the simulation and experiment[87]
    Energy level diagram of Ho3+[87] (GSA—ground state absorption; ESA—excited state absorption; ETU—energy transfer up-conversion; CR—cross relax-ation, SE—stimulated emission; NR—nonradiative relaxation)
    • Table 1. Maximum phonon energies and infrared cut-off wavelengths of several main glass materials

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      Table 1. Maximum phonon energies and infrared cut-off wavelengths of several main glass materials

      Glass materialMaximum phonon energy /cm-1Infrared cut-off wavelength /μm
      Silica1000‒11004.2
      Silicate1000‒11005
      Phosphate1100‒13504
      Germanate800‒9756
      Tellurite600‒8506.6
      Fluoride400‒6309
      Chalcogenide200‒35025
    • Table 2. Research progress of mid-infrared continuous-wave fiber laser using commercial fluoride glass fibers

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      Table 2. Research progress of mid-infrared continuous-wave fiber laser using commercial fluoride glass fibers

      YearIonOutput wavelength /μmMaximum output power /WRef.
      1992Er3+3.526
      2009Er3+32427
      2009Er3+2.824528
      2014Er3+3.50.2629
      2018Er3+2.82441.69
      2022Er3+3.54714.930
      2023Er3+2.85.731
      2019Dy3+/Tm3+3.230.01232
      2020Dy3+3.020.10524
      2009Ho3+/Pr3+2.942.533
      2011Ho3+3.0020.7734
      2018Ho3+3.920.19725
      2024Ho3+3.921.735
      2011Er3+~3~0.0936
      2017Er3+3.520.8511
      2021Er3+3.51.7237
      2022Er3+3.457‒3.542.3238
      2018Ho3+2.8680.05739
      2022Ho3+/Pr3+2.871.1340
    • Table 3. Thermal and mechanical properties of typical fluoride glass materials

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      Table 3. Thermal and mechanical properties of typical fluoride glass materials

      ParameterAYF51ABCYSMT53ZBYA54ZBLAN49-50ABCYSMLZ51Fluoroindate glass55
      k /(W·m-1·K-11.0550.790.610.630.9310.7
      v0.310.270.220.310.230.295
      α /(10-6 K)15.6615.419.417.217.4520.93
      E /GPa72.7472.5255.958.36157.07
      σF /(MPa·m1/20.5740.510.450.320.440.53
      Rs /(W·m-1/20.3670.2630.1970.1380.2960.219
      Tg /℃425440331262376261
      ΔT /℃7812071667685
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    Yu Dong, Pengfei Wang, Shijie Jia, Zhi Zhang, Zhuowei Cheng. Research Progress on Rare Earth Doped Fluoride Glass and Fiber Lasers in the Mid-Infrared Region (Invited)[J]. Acta Optica Sinica (Online), 2024, 1(6): 0602001

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    Paper Information

    Category: Photonic and Optoelectronic Devices

    Received: Sep. 5, 2024

    Accepted: Sep. 19, 2024

    Published Online: Dec. 17, 2024

    The Author Email: Wang Pengfei (pengfei.wang@tudublin.ie)

    DOI:10.3788/AOSOL240450

    CSTR:32394.14.AOSOL240450

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