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[Keyword] semiconductor optical amplifiers(4hit)

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  • Transmission over 80 km at 10 Gb/s Using the Amplifier- and Modulator-Integrated Laser Diode

    In KIM  Byung-Kwon KANG  Yu-Dong BAE  Byeonghoon PARK  Sang-Moon LEE  Young Hyun KIM  Dong-Hoon JANG  

     
    PAPER-Optical Active Devices and Modules

      Vol:
    E88-C No:5
      Page(s):
    984-989

    We demonstrated the transmission over 80 km at 10 Gb/s by using the amplifier and electroabsorption-modulator integrated laser diode. Tilt-facet antireflection window is implemented, inside of which a monitor photodiode is monolithically integrated for accurate power regulation. To better control the amplifier-input power and to reduce the feedback of the amplified spontaneous emission, an attenuator is incorporated by means of the inner-window. By amplifying the modulated signal and compensating modulator-chirp by gain-saturation in the amplifier, high power optical transmission is achieved from a device with -10 dB attenuation at total laser and amplifier currents of 200 mA.

  • Alternate-Phase RZ Pulse Sequence Generation Using a Rational Harmonic Mode-Locked Fiber Ring Laser

    Yun Jong KIM  Hyun-Jeong JO  Young Yun CHUN  Chang-Soo PARK  

     
    PAPER-Transmission Systems and Technologies

      Vol:
    E88-B No:5
      Page(s):
    1970-1976

    We present and demonstrate a novel method of generating a π phase-alternated return-to-zero (RZ) signal together with pulse-amplitude equalization in a rational harmonic mode-locked fiber ring laser, by using a dual-drive Mach-Zehnder modulator. By adjusting the voltages applied to both arms of the modulator, amplitude-equalization and π phase shift can be achieved successfully at a 9.95 GHz repetition rate. The generated alternate-phase RZ signals show enhanced transmission performance in the single-mode fiber (SMF) links without dispersion compensation.

  • Ultrafast All-Optical Switching of OTDM Signal for Wavelength Routing Using FWM in SOA

    Takashi MORI  Hitoshi KAWAGUCHI  

     
    LETTER-Lasers, Quantum Electronics

      Vol:
    E87-C No:12
      Page(s):
    2189-2192

    Ultrafast all-optical switching was experimentally demonstrated using four-wave mixing in an SOA. Two pump pulses with different wavelengths and timings were used for 12 switching. The cross-correlation measurements of FWM signals using a short reference pulse show the high-speed switching capability for wavelength routing in OTDM networks.

  • A Novel Technique for Optical Generation of Millimeter-Wave Signals Using Multiple Phase-Locked Lasers

    Masaharu HYODO  Masayoshi WATANABE  

     
    PAPER-Signal Generation and Processing Based on MWP Techniques

      Vol:
    E86-C No:7
      Page(s):
    1236-1244

    A new technique for optical generation of high-purity millimeter-wave (mm-wave) signals--namely, by synthesizing the outputs from cascadingly phase-locked multiple semiconductor lasers--was developed. Firstly, a high-spectral-purity mm-wave signal was optically generated by heterodyning the outputs from two phase-locked external-cavity semiconductor lasers. The beat signal was detected by a p-i-n photodiode whose output was directly coupled to a coax-waveguide converter followed by a W-band harmonic mixer. By constructing an optical phase-locked loop (OPLL), a high-spectral-purity mm-wave signal with an electrical power of 2.3 µW was successfully generated at 110 GHz with an rms phase fluctuation of 57 mrad. Secondly, the frequency of the mm-wave signal was extended by use of three cascadingly phase-locked semiconductor lasers. This technique uses a semiconductor optical amplifier (SOA) to generate four-wave-mixing (FWM) signals as well as to amplify the input signals. When the three lasers were appropriately tuned, two pairs of FWM signals were nearly degenerated. By phase-locking the offset frequency in one of the nearly degenerated pairs, the frequency separations among the three lasers were kept at a ratio of 1:2. Thus, we successfully generated high-purity millimeter-wave optical-beat signals at frequencies at 330.566 GHz with an rms phase fluctuation of 0.38 rad. A detailed analysis of the phase fluctuations was carried out on the basis of measured power spectral densities. The possibility of extending the mm-wave frequency up to 1 THz by using four cascadingly phase-locked lasers was also discussed.