• Chinese Journal of Lasers
  • Vol. 48, Issue 24, 2406002 (2021)
Pengfei Xu*, Xiangyang Song**, Dechun Zhou***, Minqiang Liu, Yanfang Peng, Jiacheng Li, and Chunlai Song
Author Affiliations
  • School of Materials Science and Engineering, Changchun University of Science and Technology, Changchun, Jilin 130022, China
  • show less
    DOI: 10.3788/CJL202148.2406002 Cite this Article Set citation alerts
    Pengfei Xu, Xiangyang Song, Dechun Zhou, Minqiang Liu, Yanfang Peng, Jiacheng Li, Chunlai Song. Bismuthate Glass Microstructure Fiber with High Birefringence and Large Negative Dispersion[J]. Chinese Journal of Lasers, 2021, 48(24): 2406002 Copy Citation Text show less
    References

    [1] Knight J C, Birks T A, Russell P St J et al. All-silica single-mode optical fiber with photonic crystal cladding[J]. Optics Letters, 21, 1547-1549(1996).

    [2] Guo Y Y, Yan F P, Liu S et al. Characteristics investigation of high birefringent micro-structured optical fiber filled with magnetic fluid at 2 μm band[J]. Chinese Journal of Lasers, 45, 0406003(2018).

    [3] Zhou D C, Jin D Y, Lan Z D et al. Preparation of Er 3+/Yb 3+ co-doped citrate microstructure fiber of large mode field and its 3.0 μm laser performance[J]. Journal of the American Ceramic Society, 1686-1693(2018).

    [4] Birks T A, Knight J C, Russell P S. Endlessly single-mode photonic crystal fiber[J]. Optics Letters, 22, 961-963(1997).

    [5] Li X L, Zhang S H, Liu X G. Finite element simulation of high nonlinear ultra-low loss birefringent PCF with flat dispersion[J]. Optical Communication Technology, 44, 58-62(2020).

    [6] Liao K, Liao J F, Xie Y M et al. A defect photonic crystal fiber with high birefringence and negative dispersion[J]. Laser & Optoelectronics Progress, 55, 070604(2018).

    [7] Wei H Y. Design of mid-infrared supercontinuum generation based on As2Se3 microstructured optical fiber[J]. Study on Optical Communications, 33-37(2019).

    [8] Lee Y S, Lee C G, Bahloul F et al. Simultaneously achieving a large negative dispersion and a high birefringence over Er and Tm dual gain bands in a square lattice photonic crystal fiber[J]. Journal of Lightwave Technology, 37, 1254-1263(2019).

    [9] Cranch G A, Miller G A. Coherent light transmission properties of commercial photonic crystal hollow core optical fiber[J]. Applied Optics, 54, 8-16(2015).

    [10] Yu Z, Xu Z Y, Fu S N. Review of erbium-doped fiber for space-division multiplexing transmission[J]. Designing Techniques of Posts and Telecommunications, 77-82(2018).

    [11] Choutagunta K, Kahn J M. Dynamic channel modeling for mode-division multiplexing[J]. Journal of Lightwave Technology, 35, 2451-2463(2017).

    [12] Buono W T, Santiago J, Pereira L J et al. Polarization-controlled orbital angular momentum switching in nonlinear wave mixing[J]. Optics Letters, 43, 1439-1442(2018).

    [13] Rong G H, Yi X S. Investigation on a new high birefringence photonic crystal fiber[J]. Semiconductor Optoelectronics, 39, 211-215(2018).

    [14] Zhang Y, Ge H B, Wu H et al. Characteristic analysis of an elliptic double core photonic crystal fiber with high birefringence and low loss[J]. Optical Communication Technology, 44, 13-17(2020).

    [15] Song X Y, Han K X, Zhou D C et al. ~2 μm emission properties and energy transfer processes in Tm 3+ doped Bi2O3-GeO2-Na2O glass laser material[J]. Journal of Luminescence, 224, 117314(2020).

    [16] Song X Y, Jin D Y, Zhou D C et al. Er 3+/Yb 3+ co-doped bismuthate glass and its large-mode-area double-cladding fiber for 1.53 μm laser[J]. Journal of Alloys and Compounds, 853, 157305(2021).

    [17] Brechet F, Marcou J, Pagnoux D et al. Complete analysis of the characteristics of propagation into photonic crystal fibers, by the finite element method[J]. Optical Fiber Technology, 6, 181-191(2000).

    [18] Koshiba M. Full-vector analysis of photonic crystal fibers using the finite element method[J]. IEICE Transactions on Electronics C, 4, 881-888(2002).

    [19] Saitoh K, Koshiba M. Full-vectorial imaginary-distance beam propagation method based on a finite element scheme: application to photonic crystal fibers[J]. IEEE Journal of Quantum Electronics, 38, 927-933(2002).

    [20] Zhao L J, Zhao H Y, Xu Z N. Design of photonic crystal fiber with high birefringence, low confinement loss and large negative dispersion[J]. Semiconductor Optoelectronics, 41, 368-373, 378(2020).

    [21] Zhou D C, Jin D Y, Ni Q M et al. Fabrication of double-cladding Ho 3+ /Tm 3+ co-doped Bi2O3-GeO2-Ga2O3-BaF2 glass fiber and its performance in a 2.0-μm laser[J]. Journal of the American Ceramic Society, 102, 4748-4756(2019).

    Pengfei Xu, Xiangyang Song, Dechun Zhou, Minqiang Liu, Yanfang Peng, Jiacheng Li, Chunlai Song. Bismuthate Glass Microstructure Fiber with High Birefringence and Large Negative Dispersion[J]. Chinese Journal of Lasers, 2021, 48(24): 2406002
    Download Citation