• Journal of Infrared and Millimeter Waves
  • Vol. 23, Issue 5, 367 (2004)
[in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], and [in Chinese]
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    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. THEORETICAL RESEARCH OF QUASI-PHASE-MATCHED ALL-OPTICAL WAVELENGTH CONVERSION IN LiNbO3 WAVEGUIDES[J]. Journal of Infrared and Millimeter Waves, 2004, 23(5): 367 Copy Citation Text show less
    References

    [1] Chou M H, Brener I, Fejer M M. 1.5-μm-band wavelength conversion based on cascaded second-order nonlinearity in LiNbO3 waveguides[J]. IEEE Photonics Technology Letter, 1999, 11(6): 653-655.

    [2] Inoue K, Mukai T. Nearly degenerate four-wave mixing in a traveling-wave semiconductor laser amplifier[J]. Appl.Phys. Lett., 1987, 51(14): 1051-1053.

    [3] Kawaguchi H, Oe K. Tunable optical-wavelength conversion using a multielectrode distributed-feedback laser diode with a saturable absorber[J]. Electron. Lett., 1987, 23(20): 1088-1089.

    [4] Takahata K, Kasaya K. Wavelength dependence of optical frequency conversion device with asymmetric κ-DBR structure[J]. Electron. Lett., 1992, 28(22): 2078-2079.

    [5] Provost J G, Frey R. Cavity-enhanced highly nondegenerate four-wave mixing in GaAlAs semiconductor lasers[J]. Appl. Phys. Lett., 1989, 55(6): 519-521.

    [6] Xu C Q, Okayama H. 1.5μm band efficient broadband wavelength conversion by difference frequency generation in a periodically domain-inverted LiNbO3 channel waveguide[J]. Appl. Phys. Lett., 1993, 63(26): 3559-3561.

    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. THEORETICAL RESEARCH OF QUASI-PHASE-MATCHED ALL-OPTICAL WAVELENGTH CONVERSION IN LiNbO3 WAVEGUIDES[J]. Journal of Infrared and Millimeter Waves, 2004, 23(5): 367
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