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Optical frequency division multiplexing systems

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Part of the book series: Telecommunications Technology and Applications Series ((TTAP))

Abstract

In frequency division multiplexing (FDM) communication schemes, carrier frequency stability is essential since the frequency values themselves contain the information needed for channel selection. Higher transmission capacity per unit frequency requires higher carrier frequency stability.

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References

  • Agrawal, G. P. (1987) Evaluation of crosstalk penalty in multichannel ASK heterodyne optical communication systems, Electronics Letters, 23, pp. 906–908.

    Article  Google Scholar 

  • Al-Chalabi, S. A. et al. (1990) Temperature and mechanical vibration characteristics of a miniature long external cavity semiconductor laser, Electronics Letters, 26, pp. 1159–1160.

    Article  Google Scholar 

  • Amann, M. C., Illek, S., Schanen, C. and Thulke, W. (1989b) Tuning range and threshold current of the tunable twin-guide (TTG) laser, IEEE Photonics Technology Letters, 1, pp. 253–254.

    Article  Google Scholar 

  • Amann, M. C., Illek, S., Schanen, C., Thulke, W., and Lang, H. (1989a) Continuously tunable single-frequency laser diode utilizing transverse tuning scheme, Electronics Letters, 25, pp. 837–839.

    Article  Google Scholar 

  • Bachus, E. J., Bohnke, F., Braun, R. P., Eutin, W., Foisel, H., Heimes, K. and Strebel, B. (1985a) Two channel heterodyne-type transmission experiments, Electronic Letters, 21, pp. 35–36.

    Article  Google Scholar 

  • Bachus, E. J., Braun, R. P., Bohnke, F., Elze, G., Eutin, W., Foisel, H., Heimes, K. and Strebel, B. (1984) Digital transmission of TV signals with a fiber-optic heterodyne transmission system, IEEE Journal Lightwave Technology, LT-2, pp. 382–384.

    Google Scholar 

  • Bachus, E. J., Braun, R. P., Caspar, C., Foisel, H. M., Grossmann, E., Strebel, B. and Westphal, F. J. (1989) Coherent optical multicarrier systems, IEEE Journal Lightwave Technology, 7, pp. 375–384.

    Article  Google Scholar 

  • Bachus, E. J., Braun, R. P., Casper, C., Grossmann, E., Foisel, H., Heimes, K., Lamping, H., Strebel, B. and Westphal, F. J. (1986) Ten-channel coherent optical fiber transmission, Electronics Letters, 22, pp. 1002–1003.

    Article  Google Scholar 

  • Bachus, E. J., Braun, R. P., Eutin, W., Grossmann, E., Foisel, H., Heimes, K. and Strebel, B. (1985b) Coherent optical fiber subscriber line, IOOC-ECOC’85 Technical Digest, 3, pp. 61–64.

    Google Scholar 

  • Baldacci, A., Ghersetti, S. and Rao, K. H. (1977) Interpretation of the acetylene spectrum at 1.5 μm, Journal Molecular Spectroscopy, 68, pp. 183–194.

    Article  Google Scholar 

  • Barnes, J. A, et al. (1971) Characterization of frequency stability, IEEE Transactions Instrumentation Measurement, IM-20, pp. 105–120.

    Article  Google Scholar 

  • Cheng, Y. H. and Okoshi, T. (1990) Multichannel DPFSK coherent optical communication systems, Electronics Letters, 26, pp. 1378–1380.

    Article  Google Scholar 

  • Chikama, T., Naito, T., Watanabe, S., Kiyonaga, T., Suyama, M. and Kuwahara, H. (1990) Optical heterodyne image-rejection receiver for high-density optical frequency division multiplexing system, IEEE Journal Selected Areas Communication, 8, pp. 1087–1094.

    Article  Google Scholar 

  • Chraplyvy, A. R. (1984) Optical power limits in multichannel wavelength-division-multiplexed systems due to stimulated Raman scattering, Electronics Letters, 20, pp. 58–59.

    Article  Google Scholar 

  • Chraplyvy, A. R. (1990) Limitations on lightwave communications imposed by opticalfiber nonlinearities, IEEE Journal Lightwave Technology, 8, pp. 1548–1557.

    Article  Google Scholar 

  • Chraplyvy, A. R., Tkach, R. W., Gnauck, A. H., Kasper, B. L. and Derosier, R. M. (1989) 8 Gbit/s FSK modulation of DFB lasers with optical demodulation, Electronics Letters, 25, pp. 319–321.

    Article  Google Scholar 

  • Chung, Y. C. (1990) Frequency-locked 1.3 and 1.5 μm semiconductor lasers for lightwave systems applications, IEEE Journal Lightwave Technology, 8, pp. 869–876.

    Article  Google Scholar 

  • Chung, Y. C. and Derosier, R. M. (1990) Frequency-locking of 1.5 μm InGaAsP lasers to an atomic krypton line without dithering the laser frequency, IEEE Photonics Technology Letters, 2, pp. 435–437.

    Article  Google Scholar 

  • DeLange, O. E. (1970) Wide-band optical communication systems: part II, frequencydivision-multiplexing, Proceedings of the IEEE, 58, pp. 1683–1690.

    Article  Google Scholar 

  • Elrefaie, A., Maeda, M. W. and Guru, R. (1989) Impact of laser linewidth on optical channel spacing requirements for multichannel FSK and ASK systems, IEEE Photonics Technology Letters, 1, pp. 88–90.

    Article  Google Scholar 

  • Flaarønning, N., Frorud, J. O., Sotom, M., Vendrome, G., Da Loura, G., Gabriagues, J. M., Jacquet, J., Leclerc, D. and Benoit, J. (1990) Multichannel FSK transmission at 565 Mb/s using tunable three-electrode DFB lasers, Electronics Letters, 26, pp. 869–870.

    Article  Google Scholar 

  • Fujiwara, M., Shimosaka, N., Nishio, M., Suzuki, S., Yamazaki, S., Murata, S., and Kaede, K. (1990) A coherent photonic wavelength-division switching for broad-band networks, IEEE Journal Lightwave Technology, 8, pp. 416–422.

    Article  Google Scholar 

  • Glance, B. S. (1986) An optical heterodyne mixer providing image-frequency rejection, IEEE Journal Lightwave Technology, LT-4, pp. 1722–1725.

    Article  Google Scholar 

  • Glance, B. S. and Scaramucci, O. (1990) High-performance dense FDM coherent optical networks, IEEE Journal Selected Areas Communications, 8, pp. 1043–1047.

    Article  Google Scholar 

  • Glance, B., Fitzgerald, P. J., Pollock, K. J., Stone, J., Burrus, C. A. and Stulz, L. W. (1987) Frequency stabilization of FDM optical signals, Electronics Letters, 23, pp. 274–276.

    Google Scholar 

  • Glance, B., Pollock, K. J., Burrus, C. A., Kasper, B. L., Eisenstein, G., and Stulz, L. W. (1988a) WDM coherent optical star network, IEEE Journal Lightwave Technology, 6, pp. 67–72.

    Article  Google Scholar 

  • Glance, B., Pollock, K., Burrus, C. A., Kasper, B. L., Eisenstein, G. and Stulz, L. W. (1987) Density-spaced WDM coherent optical star network, Electronics Letters, 23, pp. 875–876.

    Article  Google Scholar 

  • Glance, B., Stone, J., Pollock, K. J., Fitzgerald, P. J., Burrus C. A. Jr., Kasper, B. L. and Stulz, L. W. (1988b) Densely spaced FDM coherent star network with optical signals confined to equally spaced frequencies, IEEE Journal Lightwave Technology, LT-6, pp. 1770–1781.

    Article  Google Scholar 

  • Gordon, J. P. and Mollenauer, L. F. (1991) Phase noise in photonic communications systems using linear amplifier noise, IEEE Journal Lightwave Technology, 9, pp. 1351–1353.

    Google Scholar 

  • Hall, J. L. and Lee, S. A. (1976) Interferometric real-time display of CW dye laser wavelength with sub-Doppler accuracy, Applied Physics Letters, 29, pp. 367–369.

    Article  Google Scholar 

  • Hamaide, J. P. and Emphlit, Ph. (1990) Limitation in long haul IM/DD optical fiber systems caused by chromatic dispersion and nonlinear Kerr effects, Electronics Letters, 26, pp. 1451–1453.

    Article  Google Scholar 

  • Hamaide, J. P., Emphlit, P., Prigent, L., Audouin, O. and Gabriagues, J. M. (1992) Effects of chromatic dispersion, Kerr nonlinearities and amplifier noise in long PSK optical fibre systems, Electronics Letters, 28, pp. 44–46.

    Article  Google Scholar 

  • Hunkin, D. J., Hill, G. R. and Stallard, W. A. (1986) Frequency-locking of external cavity semiconductor lasers using an optical comb generator, Electronics Letters, 22, pp. 388–390.

    Article  Google Scholar 

  • IEEE (1990) Selected Areas in Communications, 8(6), 1005–1014.

    Article  Google Scholar 

  • Inoue, K. (1990) Wavelength conversion for frequency-modulated light using optical modulation to oscillation frequency of a DFB laser diode, IEEE Journal Lightwave Technology, 8, pp. 906–911.

    Article  Google Scholar 

  • Inoue, K. and Toba, H. (1991) Error rate degradation due to fibre four-wave mixing in 4-channel FSK direct-detection transmission, IEEE Photonics Technology Letters, 3, pp. 77–79.

    Article  Google Scholar 

  • Inoue, K. and Toba, H. (1992a) Theoretical evaluation of error rate degradation due to fiber four-wave mixing in multichannel FSK heterodyne envelope detection transmissions, IEEE Journal Lightwave Technology, 10, pp. 361–366.

    Article  Google Scholar 

  • Inoue, K. and Toba, H. (1992b) Wavelength conversion experiment using fiber four-wave mixing, IEEE Photonics Technology Letters, 4, pp. 69–72.

    Article  Google Scholar 

  • Inoue, K., Toba, H. and Nosu, K. (1991) Multichannel amplification utilizing an Er3+-doped fiber amplifier, IEEE Journal Lightwave Technology, 9, pp. 368–374.

    Article  Google Scholar 

  • Inoue, K., Toba, H. and Oda, K. (1992) Influence of fiber four-wave mixing on multichannel FSK direct detection systems, IEEE Journal Lightwave Technology, 10, pp. 350–360.

    Article  Google Scholar 

  • Ishida, O. (1991) Lightwave frequency tracking with a tunable DBR laser, IEEE Journal Lightwave Technology, 9, pp. 1083–1093.

    Article  Google Scholar 

  • Ishida, O. and Toba, H. (1991) Lightwave frequency synthesizer with lock-in-detected frequency references, IEEE Journal Lightwave Technology, 9, pp. 1344–1352.

    Article  Google Scholar 

  • Ishida, O. and Toba, H. (1991a) Submegahertz absolute frequency stability in a 1.5 μm tunable diode laser, CLEO’91 Technical Digest, CThB2, Baltimore.

    Google Scholar 

  • Ishida, O. and Toba, H. (1991b) 200 kHz absolute frequency stability in a 1.5 μm externalcavity semiconductor laser, Electronics Letters, 27, pp. 1018–1019.

    Article  Google Scholar 

  • Ishikawa, J., Ito, N. and Tanaka, K. (1986) Accurate wavelength meter for CW lasers, Applied Optics, 25, pp. 639–643.

    Article  Google Scholar 

  • Iwashita, K. and Takatio, N. (1990) Chromatic dispersion compensation in coherent optical communications, IEEE Journal Lightwave Technology, 8, 367–375.

    Article  Google Scholar 

  • Jennings, D. A., Evenson, K. M. and Knight, D. J. E. (1986) Optical frequency measurements, Proceedings IEEE, 74, pp. 168–179.

    Article  Google Scholar 

  • Kaminow, I. P. (1990) FSK with direct detection in optical multiple-access FDM networks, IEEE Journal Selected Areas Communications, 8, pp. 1005–1014.

    Article  Google Scholar 

  • Kaminow, I. P., Iannone, P. P., Stone, J. and Stulz, L. W. (1988) FDMA-FSK star network with a tunable optical filter demultiplexer, IEEE Journal Lightwave Technology, 6, pp. 1406–1414.

    Article  Google Scholar 

  • Kaminow, I. P., Iannone, P. P., Stone, J. and Stulz, L. W. (1987) FDM-FSK star network with a tunable optical filter demultiplexer, Electronics Letters, 23, pp. 1102–1103.

    Article  Google Scholar 

  • Kartaschoff, P. (1978) Frequency and Time, Section 2, Academic Press.

    Google Scholar 

  • Kazovsky, L. G. (1987a) Multichannel coherent optical communications systems, IEEE Journal Lightwave Technology, LT-5, pp. 1095–1102.

    Article  Google Scholar 

  • Kazovsky, L. G. (1987b) Multichannel coherent optical communication systems, OFC/ IOOC’87 Technical Digest, TUG1.

    Google Scholar 

  • Kazovsky, L. G. and Gimlett, J. L. (1988) Sensitivity penalty in multichannel coherent optical communications, IEEE Journal Lightwave Technology, 6, pp. 1353–1365.

    Article  Google Scholar 

  • Kazovsky, L. G. and Jacobsen, G. (1989) Multichannel CPFSK coherent optical communications systems, IEEE Journal Lightwave Technology, 7, pp. 972–982.

    Article  Google Scholar 

  • Kobayashi, K. and Mito, I. (1988) Single frequency and tunable laser diodes, IEEE Journal Lightwave Technology, 6, pp. 1623–1633.

    Article  Google Scholar 

  • Kotaki, K., Matsuda, M., Yano, M., Ishikawa, H. and Imai, H. (1987) 1.55 μm wavelength tunable FBH-DBR laser, Electronics Letters, 23, pp. 325–327.

    Article  Google Scholar 

  • Kotaki, Y., Ogita, S., Matsuda, M., Kuwahara, Y. and Ishikawa, H. (1989) Tunable narrowlinewidth and high-power 2/4-shifted DFB laser, Electronics Letters, 25, pp. 990–992.

    Article  Google Scholar 

  • Kourogi, K., Nakagawa, K., Shin, C. H., Teshima, M. and Ohtsu, M. (1991) Accurate frequency measurement system for 1.5 μm wavelength laser diodes, CLEO’91 Technical Digest, CThR 57, Baltimore.

    Google Scholar 

  • Kuboki, K., Sasaki, S., Kitajima, S., Tsushima, H. and Yamashita, K. (1990) A channelspacing stabilization using spectrum-slice synchronous-detection method for coherent FDM distributing system, in Proceedings OEC’90, 12C3-4, pp. 152–153.

    Google Scholar 

  • Kuznetsov, M. (1988) Theory of wavelength tuning in two-segment distributed feedback lasers, IEEE Journal Quantum Electronics, 24, pp. 1837–1844.

    Article  Google Scholar 

  • Lucky, R. W., Salz, J. and Weldon, E. J. Jr. (1968) Principles of Data Communication, McGraw-Hill, New York.

    Google Scholar 

  • Maeda, M. W. and Kazovsky, L. G. (1989) Novel frequency stabilization technique for multichannel optical communication systems, IEEE Photonics Technology Letters, 1, pp. 455–457.

    Article  Google Scholar 

  • Maeda, M. W., Barry, J. R., Kumazawa, T. and Wagner, R. E. (1989) Absolute frequency identification and stabilization of DFB lasers in 1.5 μm region, Electronics Letters, 25, pp. 9–11.

    Article  Google Scholar 

  • Maeda, M. W. et al. (1990) The effect of four-wave mixing in fibers on optical frequencydivision multiplexed systems, IEEE Journal Lightwave Technology, 8, pp. 1402–1408.

    Article  Google Scholar 

  • Malyon, D. and Stallard, W. A. (1989) Crosstalk in optical amplifiers and low chirp laser, Electronics Letters, 25, pp. 495–496.

    Article  Google Scholar 

  • Marcuse, D. (1991) Single-channel operation in very long nonlinear fibers with optical amplifiers at zero dispersion, IEEE Journal Lightwave Technology, 9, pp. 356–361.

    Article  Google Scholar 

  • Metrologia (1984) Documents concerning the new definition of the metre, 19, pp. 163–177.

    Google Scholar 

  • Murata, S., Mito, I. and Kobayashi, K. (1987) Over 720 GHz (5.8 nm) frequency tuning by a 1.5 μm DBR laser with phase and Bragg wavelength control section, Electronics Letters, 23, pp. 403–405.

    Article  Google Scholar 

  • Mutrata, S., Mito, I. and Kobayashi, K. (1988) Tuning ranges for 1.5 μm wavelength tunable DBR lasers, Electronics Letters, 24, pp. 577–578.

    Article  Google Scholar 

  • Naito, T., Chikama, T., Suyama, M., Kiyonga, T. and Kuwahara, H. (1989) Crosstalk penalty in a two-channel 560-Mbit/s DPSK heterodyne optical communication system using an image rejection receiver, OFC’89 Technical Digest, p. 141.

    Google Scholar 

  • Noé, R., Rodler, H., Gaukel, G., Noll, B. and Ebberg, A. (1990) High-performance, twochannel optical FSK heterodyne system with polarization diversity receiver, Electronics Letters, 26, pp. 1109–1110.

    Article  Google Scholar 

  • Norimatsu, S. and Iwashita, K. (1991) Cross-phase modulation influence on a two-channel optical PSK homodyne transmission system, IEEE Photonics Technology Letters, 3, pp. 1142–1144.

    Article  Google Scholar 

  • Nosu, K., Toba, H. and Iwashita, K. (1987) Optical FDM transmission, IEEE Journal Lightwave Technology, LT-5, pp. 1301–1308.

    Article  Google Scholar 

  • Öberg, M., Nilsson, S., Klinga, T. and Ojala, P. (1991) A three-electrode distributed Bragg reflector laser with 22 nm wavelength tuning range, IEEE Photonics Technology Letters, 3, pp. 299–301.

    Article  Google Scholar 

  • Oda, K., Takato, N., Kominato, T. and Toba, H. (1990) A 16-channel frequency selection switch for optical FDM distribution systems, IEEE Journal Selected Areas Communications, 8, pp. 1132–1140.

    Article  Google Scholar 

  • Ohtsu, M. (1988) Realization of ultrahigh coherence in semiconductor lasers by negative electrical feedback, IEEE Journal Lightwave Technology, 6, pp. 245–256.

    Article  Google Scholar 

  • Okoshi, T., Emura, K., Kikuchi, K. and Kersten, T. R. (1981) Computation of bit-error rate of various heterodyne and coherent-type optical communication schemes, Journal Optical Communications, 2, pp. 89–96.

    Google Scholar 

  • Olsson, N. A., Hegarty, J., Logan, R. A., Johnson, L. F., Walker, K. L., Cohen, L. G., Kasper, B. L. and Campbell, J. C. (1985) 68.3 km transmission wtih 1.37 Tbit km/s capacity using wavelength division multiplexing of ten single-frequency lasers at 1.5 μm, Electronics Letters, 21, pp. 105–106.

    Article  Google Scholar 

  • Park, Y. K., Bergstein, S. S., Tench, R. E., Smith, R. W., Korotky, S. K., Burns, K. J. and Granlund, S. W. (1988) Crosstalk and prefiltering in a two-channel ASK heterodyne detection system without the effect of laser phase noise, IEEE Journal Lightwave Technology, 6, pp. 1312–1320.

    Article  Google Scholar 

  • Saito, S., Murakami, M., Naka, A., Fukada, Y., Imai, T., Aiki, M. and Ito, T. (1991) 2.5 Gbit/s, 80-100 km spaced in-line amplifier transmission experiments over 2500-4500 km, Proceedings ECOC’91, Paris, France, post-deadline paper A.PDP.5.

    Google Scholar 

  • Saito, S., Yamamoto, Y. and Kimura, T. (1982) Semiconductor laser FSK modulation and optical direct discriminator detection, Electronics Letters, 18, pp. 468–469.

    Article  Google Scholar 

  • Saito, S., Yamamoto, Y. and Kimura, T. (1983) S/N and error rate evaluation for an optical FSK-heterodyne detection system using semiconductor lasers, IEEE Journal Quantum Electronics, QE-19, pp. 180–193.

    Article  Google Scholar 

  • Sakai, Y., Kano, F. and Sudo, S. (1990) Small-frequency-difference stabilization of laser diodes using 12C2H2 and 13C2H2 absorption lines for transmitter and local oscillator of optical heterodyne systems, IEEE Photonics Technology Letters, 2, pp. 762–765.

    Article  Google Scholar 

  • Sasada, H. and Yamada, K. (1990) Calibration lines of HCN in the 1.5 μm region, Applied Optics, 29, pp. 3535–3547.

    Article  Google Scholar 

  • Shibata, N., Braun, R. P. and Waarts, R. G. (1986) Crosstalk due to three-wave mixing process in a coherent single-mode transmission line, Electronics Letters, 22, pp. 675–677.

    Article  Google Scholar 

  • Shibata, N., Braun, R. P. and Waarts, R. G. (1987) Phase-mismatch dependence of efficiency of wave generation through four-wave mixing in a single-mode optical fiber, IEEE Journal Quantum Electronics, QE-23, pp. 1205–1210.

    Article  Google Scholar 

  • Shibata, N., Iwashita, K. and Azuma, Y. (1989) Receiver sensitivity degradation due to four-wave mixing in a 2 Gb/s CPFSK heterodyne transmission system, in IOOC’89 Technical Digest, Kobe, Japan, paper 18C1-3.

    Google Scholar 

  • Shibata, N., Nosu, K., Iwashita, K. and Azuma, Y. (1990) Transmission limitations due to fiber nonlinearities in optical FDM systems, IEEE Journal Selected Areas Communications, 8, pp. 1068–1077.

    Article  Google Scholar 

  • Shibutani, M., Yamazaki, S., Shimosaka, N., Murata, S. and Shikada, M. (1989) Tenchannel coherent optical FDM broadcasting system, OFC’89 Technical Digest, THC2, Houston, TX, p. 140.

    Google Scholar 

  • Shimosaka, N., Kaede, K., Fujiwara, M., Yamazaki, S., Murata, S. and Nishio, M. (1990) Frequency separation locking and synchronization for FDM optical sources using widely frequency tunable laser diodes, IEEE Journal Selected Areas Communications, 8, pp. 1078–1086.

    Article  Google Scholar 

  • Shirasaki, M., Yokota, I. and Touge, T. (1990) 20 Gbit/s no-chirp intensity modulation by DPSH-IM method and its fiber transmission through 300 ps/nm dispersion, Electronics Letters, 26, pp. 33–35.

    Article  Google Scholar 

  • Stanley, I. W., Hill, G. R. and Smith, D. W. (1987) The application of coherent optical techniques to wide-band networks, IEEE Journal Lightwave Technology, LT-5, pp. 439–451.

    Article  Google Scholar 

  • Suyama, M., Chikama, T. and Kuwahara, H. (1988) Channel allocation and crosstalk penalty in coherent optical frequency division multiplexing systems, Electronics Letters, 24, pp. 1278–1279.

    Article  Google Scholar 

  • Takato, N., Sugita, A., Onose, K., Okazaki, H., Okuno, M., Kawachi, M. and Oda, K. (1990) 128-channel polarization-insensitive frequency-selection-switch using high-silica waveguides on Si, IEEE Photonics Technology Letters, 2, pp. 441–443

    Article  Google Scholar 

  • Telle, H. R., Meschede, D. and Hänsch, T. W. (1990) Realization of a new concept for visible frequency division: phase locking of harmonic and sum frequencies, Optics Letters, 15, pp. 532–534.

    Article  Google Scholar 

  • Toba, H., Inoue, K. and Nosu, K. (1986) A conceptional design on optical frequencydivision-multiplexing distribution systems with optical tunable filters, IEEE Journal Selected Areas Communications, 22, pp. 1458–1467.

    Article  Google Scholar 

  • Toba, H., Inoue, K., Nosu, K. and Motosugi, G. (1988) A multichannel laser diode frequency stabilizer for narrowly spaced optical frequency-division-multiplexing transmission, Journal Optical Communications, 9, pp. 3–7.

    Google Scholar 

  • Toba, H., Oda, K., Nakanishi, K., Shibata, N., Nosu, K., Takato, N. and Fukuda, M. (1990) A 100-channel optical FDM transmission/distribution at 622 Mb/s over 50 km, IEEE Journal Lightwave Technology, 8, pp. 1396–1401.

    Article  Google Scholar 

  • Toba, H., Oda, K. and Nosu, K. (1989) A 16-channel optical FDM distribution/transmission experiment, IOOC’89 Technical Digest, pp. 174–175.

    Google Scholar 

  • Toba, H., Oda, K. and Nosu, K. (1991) Design and performance of FSK-direct detection scheme for optical FDM systems, IEEE Journal Lightwave Technology, 9, pp. 1335–1343.

    Article  Google Scholar 

  • Toba, H., Oda, K., Nosu, K., Takato, N. and Miyazawa, H. (1988) 5 GHz-spaced eightchannel optical FDM transmission experiment using guided-wave tunable demultiplexer, Electronics Letters, 24, pp. 78–80.

    Article  Google Scholar 

  • Tsushima, H., Sasaki, S., Kuboki, K., Kitajima, S., Takeyari, R. and Okai, M. (1991) 1.244 Gbit/s 32-channel 121 km transmission experiment using shelf-mounted CPFSK optical heterodyne system, in Proceedings ECOC’91/IOOC’91, Paris, France, pp. 397–400.

    Google Scholar 

  • Vodhanel, R. S., Elregaie, A. E., Iqbal, M. Z., Wagner, R. E., Gimlett, J. L. and Tsuji, S. (1990) Performance of directly modulated DFB lasers in 10 Gb/s ASK, FSK, and DPSK lightwave systems. IEEE Journal Lightwave Technology, 8, pp. 1379–1386.

    Article  Google Scholar 

  • Waarts, R. G. and Braun, R. P. (1985) Crosstalk due to stimulated Brillouin scattering in monomode fibre, Electronics Letters, 21, pp. 1114–1115.

    Article  Google Scholar 

  • Waarts, R. G. and Braun, R. P. (1986) System limitations due to four-wave mixing in singlemode optical fibre, Electronics Letters, 22, pp. 873–874.

    Article  Google Scholar 

  • Welter, R., Sessa, W. B., Maeda, M. W., Wagner, R. E., Curtis, L., Young, J., Lee, T. P., Nanduri, K., Kodera, H., Koga, Y. and Barry, J. R. (1989) Sixteen-channel coherent broadcast network at 155 Mbit/s, IEEE Journal Lightwave Technology, 7, pp. 1438–1444.

    Article  Google Scholar 

  • Willner, A. E. (1990) Simplified model of an FSK-to-ASK direct-detection system using a Fabry-Perot demodulator, IEEE Photonics Technology Letters, 2, pp. 363–366.

    Article  Google Scholar 

  • Willner, A. E., Kaminow, I. P., Kuznetsov, M., Stone, J. and Stulz, L. W. (1990) 1.2 Gb/s closely-spaced FDMA-FSK direct-detection star network, IEEE Photonics Technology Letters, 2, pp. 223–226.

    Article  Google Scholar 

  • Wuenstel, K., Schweizer, H., Schiling, M., Idler, W., Kuehn, E., Laube, G. and Hildebrand, O. (1990) Integrated interferometric injection lasers (L=1300 nm and 1500 nm) with tuning range exceeding 20 nm, 12th IEEE International Laser Conference, Technical Digest, Davos, Switzerland, pp. 212–213.

    Google Scholar 

  • Wyatt, R. and Delvin, W. J. (1983) 10 kHz linewidth 1.5 μm InGaAsP external cavity lasers with 55 nm tuning range, Electronics Letters, 19, pp. 110–112.

    Article  Google Scholar 

  • Yamazaki, S., Ono, T., Shimizu, H. and Emura, K. (1990a) A bidirectional common polarization control method for coherent optical FDM transmission system, IEEE Photonics Technology Letters, 2, pp. 135–138.

    Article  Google Scholar 

  • Yamazaki, S., Ono, T., Shimizu, H., Kitamura, M. and Emura, K. (1990b) 2.5 Gb/s CPFSK coherent multichannel transmission experiment for high capacity trunk line system, IEEE Photonics Technology Letters, 2, pp. 914–916.

    Article  Google Scholar 

  • Yamazaki, S., Shibutani, M., Shimosaka, N., Murata, S., Ono, T., Kitumara, M., Emura, K. and Shikada, M. (1990c) A coherent optical FDM CATV distribution system, IEEE Journal Lightwave Technology, 8, pp. 396–405.

    Article  Google Scholar 

  • Yanagawa, T., Saito, S., Machida, S. and Yamamoto, Y. (1985) Frequency stabilization of an InGaAsP distributed feedback laser to an NH3 absorption line at 15137 Å with an external frequency modulator, Applied Physics Letters, 47/10, pp. 1036–1038.

    Article  Google Scholar 

  • Yasaka, H. and Kawaguchi, H. (1988) Linewidth reduction and optical frequency stabilization of a distributed feedback laser by incoherent optical negative feedback, Applied Physics Letters, 53, pp. 1360–1362.

    Article  Google Scholar 

  • Yoshikuni, Y., Oe, K., Motosugi, G. and Matsuoka, T. (1986) Broad wavelength tuning under single-mode oscillation with a multi-electrode distributed feedback laser, Electronics Letters, 22, pp. 1153–1154.

    Article  Google Scholar 

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© 1995 Sadakuni Shimada

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Ishida, O., Toba, H., Shibata, N. (1995). Optical frequency division multiplexing systems. In: Shimada, S. (eds) Coherent Lightwave Communications Technology. Telecommunications Technology and Applications Series. Springer, Dordrecht. https://doi.org/10.1007/978-94-011-1308-3_5

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  • DOI: https://doi.org/10.1007/978-94-011-1308-3_5

  • Publisher Name: Springer, Dordrecht

  • Print ISBN: 978-0-412-57940-0

  • Online ISBN: 978-94-011-1308-3

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