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[Author] Terutoshi KANAMORI(3hit)

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  • Praseodymium-Doped Fiber Amplifiers at 1.3m

    Yasutake OHISHI  Terutoshi KANAMORI  Makoto SHIMIZU  Makoto YAMADA  Yukio TERUNUMA  Jiro TEMMYO  Masato WADA  Shoichi SUDO  

     
    INVITED PAPER

      Vol:
    E77-B No:4
      Page(s):
    421-440

    Fundamentals and development of PDFAs are described. Spectroscopic data of Pr3+ in a fluoride glass are presented with a view to understanding the performance of PDFA. An amplification mechanism model which explains PDFA performance is established. On the basis of the model pump schemes which efficiently extract the potential in Pr3+-doped fluoride fiber are discussed in order to construct amplifier modules. Gain characteristics of Pr3+-doped fluoride fibers are clarified. Codoping effect on pump wavelength extension is investigated. LD-pumped PDFA construction and performance are described. PDFAs are shown to be attractive device to upgrade the performance of optical systems at 1.3µm. Furthermore future approaches to PDFA research are discussed.

  • Novel 1470-nm-Band WDM Transmission and Its Application to Ultra-Wide-Band WDM Transmission

    Jun-ichi KANI  Tadashi SAKAMOTO  Masahiko JINNO  Kuninori HATTORI  Makoto YAMADA  Terutoshi KANAMORI  Kimio OGUCHI  

     
    INVITED PAPER-Optical Systems and Technologies

      Vol:
    E82-B No:8
      Page(s):
    1131-1140

    A novel 1470-nm-band (S+ band) wavelength-division multiplexing (WDM) transmission system is described. The first advantage of S+-band transmission is suppression of degradation caused by four-wave mixing (FWM), which has been the dominant impairment factor in WDM transmission systems on dispersion-shifted fibers (DSFs). FWM suppression by using the S+ band instead of the conventional 1550-nm-band (M band) is successfully demonstrated. The second advantage is expansion of the usable bandwidth by using the S+ band together with other wavelength bands. A triple-wavelength-band WDM repeaterless transmission experiment using the S+ band, the M band and the L band (1580-nm-band) is conducted over DSF, and it is shown that degradation due to inter-wavelength-band nonlinear interactions is negligible in the transmission. Moreover, the transmission performance of an S+-band linear repeating system is estimated by computer simulation, and compared with that of other wavelength-band systems. In the experiments, thulium-doped fiber amplifiers (TDFAs) are used for amplification of signals in the S+ band.

  • Novel 1470-nm-Band WDM Transmission and Its Application to Ultra-Wide-Band WDM Transmission

    Jun-ichi KANI  Tadashi SAKAMOTO  Masahiko JINNO  Kuninori HATTORI  Makoto YAMADA  Terutoshi KANAMORI  Kimio OGUCHI  

     
    INVITED PAPER-Optical Systems and Technologies

      Vol:
    E82-C No:8
      Page(s):
    1397-1406

    A novel 1470-nm-band (S+ band) wavelength-division multiplexing (WDM) transmission system is described. The first advantage of S+-band transmission is suppression of degradation caused by four-wave mixing (FWM), which has been the dominant impairment factor in WDM transmission systems on dispersion-shifted fibers (DSFs). FWM suppression by using the S+ band instead of the conventional 1550-nm-band (M band) is successfully demonstrated. The second advantage is expansion of the usable bandwidth by using the S+ band together with other wavelength bands. A triple-wavelength-band WDM repeaterless transmission experiment using the S+ band, the M band and the L band (1580-nm-band) is conducted over DSF, and it is shown that degradation due to inter-wavelength-band nonlinear interactions is negligible in the transmission. Moreover, the transmission performance of an S+-band linear repeating system is estimated by computer simulation, and compared with that of other wavelength-band systems. In the experiments, thulium-doped fiber amplifiers (TDFAs) are used for amplification of signals in the S+ band.