• Chinese Journal of Lasers
  • Vol. 28, Issue 2, 125 (2001)
[in Chinese] and [in Chinese]
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  • [in Chinese]
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    [in Chinese], [in Chinese]. Amplified Spontaneous Emission in Ytterbium-doped Monomode Silica Fiber[J]. Chinese Journal of Lasers, 2001, 28(2): 125 Copy Citation Text show less
    References

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    [2] D. C. Hanna, R. M. Percival, I. R. Perry et al.. An ytterbium-doped monomode fibre laser: broadly tunable operation from 1.010 μm to 1.162 μm and three-level operation at 974 nm. J. Mod. Opt., 1990, 37(4):517~525

    [3] J. Y. Allain, M. Monerie, H. Poignant et al.. High-efficiency ytterbium-doped fluoride fiber laser. J. Non-Crystalline Solids, 1993, 161:270~273

    [4] C. J. Mackechnie, W. L. Barnes, D. C. Hanna et al.. High power ytterbium(Yb3+)-doped fiber laser operating in the 1.12 μm region. Electron. Lett., 1993, 29(1):52~53

    [5] S. Magne, M. Druetta, J. P. Goure et al.. An ytterbium-doped monomode fiber laser: amplified spontaneous emission modeling of gain and tunability in a external cavity. J. Lumin., 1994, 60:647~650

    [7] D. T. Walton, J. Nees, G. Mourou. Broad-bandwidth pulse amplification to the 10-μJ level in an ytterbium-doped germanosilicate fiber. Opt. Lett., 1996, 21(14):1061~1063

    [8] V. Cautaerts, D. J. Richardson, R. Paschotta et al.. Stretched pulse Yb3+:silica fiber laser. Opt. Lett., 1997, 22(5):316~318

    [9] R. Paschotta, D. C. Hanna, P. De Natale et al.. Power amplifier for 1083 nm using ytterbium doped fiber. Opt. Commun., 1997, 136(3,4):243~246

    [10] H. M. Pask, R. J. Canman, D. C. Hanna et al.. Ytterbium-doped silica fiber lasers: versatile sources for the 1~1.2 μm region. IEEE J. Select. Topics Quantum. Electron., 1995, 1:2~13

    [11] L. Goldberg, J. P. Koplow, R. P. Moeller. High power superfluorescent source with a side-pumped Yb-doped double-cladding fiber. Opt. Lett., 1998, 23(13):1037~1039

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    [in Chinese], [in Chinese]. Amplified Spontaneous Emission in Ytterbium-doped Monomode Silica Fiber[J]. Chinese Journal of Lasers, 2001, 28(2): 125
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