1. S. B. Poole, D. N. Payne, M. E. Fermann, "Fabrication of low loss optical fibres
containing rare-earth ions, " Election. Lett., vol. 21, 737, 1985
2. R. J. Mears, L. Reekie, I. M. Jauncey, and D. N. Payne, "High gain rare-earth
doped fibre amplifier operating at 1.55 m," Proc. OFC, Reno, NV, 1987
3. K. O. Hill, Y. Fujii, D. C. Johnson, and B. S. Kawasaki," Photosensitivity in optical fiber fabrication ", Appl. Phys. Lett., vol. 32, 647, 1978
4. B. S. Kawasaki, K. O. Hill, D. C. Johnson, and Y. Fujii," Narrow-band Bragg reflectors in optical fibers", Opt. Lett., vol. 3, 66, 1978
5. G. Meltz, W. W. Moley, and W. H. Glenn," Formation of Bragg gratings in optical fibers by transverse holographic method.", Opt. Lett., vol. 14, no. 15 , 823, 1989
6. K. O. Hill, B. Malo, F. Bilodeau, D. C. Johnson and J. Albert," Bragg grating fabricated in monomode photosensitive optical fibres by UV exposure through a phase mask.", Appl. Phys. Lett., vol. 62, no. 10, 1035, 1993
7. J. T. Kringlebotn, J.-L. Archambault, L. Reekie, J. E. Townsend, G. G. Viene, and D. N. Payne,” Highly efficient, low noise grating feedback Er3+:Yb3+ codoped fiber laser,” Electron. Lett., vol. 30, pp. 972-973, 1994
8. W. H. Loh and R. I. Laming ,?.55 m phase-shifted distributed feedback fiber laser," Electron. Lett. ,vol. 31, pp. 1440-1442, 1995
9. M. Sejka, P. Varming, J Hubner, and M. Kristensen, " Distributed feedback Er3+-doped fiber laser," Electron. Lett., vol. 31, pp. 1445-1446, 1995
10. L. Dong et. al.," Efficient single-frequency fiber lasers with novel photosensitive Er/Yb optical fibers", Opt. Lett., vol. 22, pp. 694-696, 1997
11. G. A. Ball and W. W. Morey," Compression-tuned single-frequency Bragg grating fiber laser", Opt. Lett., vol. 19, pp. 1979-1981, 1994
12. M. Ibsen, B. J. Eggleton, M. G. Sceats, and F. Ouellette," Broadly tunable DBR laser using sampled fibre Bragg gratings," Electron. Lett., vol. 31, pp. 37-38, 1995
13. S. Arahira, Y. Matsui, and Y. Ogawa, “Mode-locking at very high repetition rates more than Terahertz in passively mode-locked distributed-Bragg-reflector laser diodes”, J. Quantum Electron., vol. 32, pp. 1211-1224, 1996
14 K. Hsu, W. H. Loh, L. Dong, and C. M. Miller," Efficient and tunable Er/Yb fiber grating lasers," J. Lightwave Technol., vol. 15, pp. 1438-1441, 1997
15. P. B. Hansen, G. Raybon, U Koren, B. I. Miller, M. G. Young, M. Chien, C. A. Burrus, and R. C. Alferness," 5.5-mm long InGaAsP monolithic extended-cavity laser with an integrated bragg-reflector for active mode-locking", IEEE Photon. Technol. Lett., vol. 4, 215, 1992
16. P. P. Vasil''ev, V. N. Morozov, G. T. Pak, Y. U. Popov, M. Yu, and A. B. Sergeev, " Measurement of the frequency shift of a picosecond pulse from a mode-locked injection laser", Sov. J. Quantum Electron., vol. 15, 859, 1985
17. H. Takara, S. Kawanidhi and M. Saruwatari, ? GHz transform-limited optical pulse generation and bit-error free operation using a tunable actively modelocked Er-doped fiber ring laser," Electron. Lett., vol. 29, 1149-1150, 1993
18. X. Shan and D. M. Spirit, "Novel method to supress noise in harmonically modelocked erbium fiber lasers," Electron. Lett., vol. 29, pp.979-981, 1993
19. G. T. Harvey and L. F. Mollenauer, "Harmonically mode-locked fiber ring laser with an internal Fabry-perot stabilizer for soliton transmission," Opt. Lett., vol. 18, pp. 107-109, 1993
20. J. S. Wey, J. Goldhar, D. W. Rush, M. W. Chbat, G. M. Carter, and G. L. Burdge, "Performance characterization of a harmonically modelocked erbium fiber laser," IEEE Photon. Technol. Lett., vol. 7, pp. 152-154, 1995
21. H. Nishihara, M. Haruna, and T. Suhara, Optical Integrated Circuits (McGraw-Hill, Yew York,1989) pp.286
22. K. K. Gupta and D. Novak “Millimetre-wave repetition-rate optical pulse train generation in harmonically modelocked fibre ring laser”, Electron. Lett. vol. 33, pp. 1330-1331, 1997
23. Th. Pfeiffer and G. Veith, “40GHz pulse generation using a widely tunable all-polarisation preserving erbium fibre ring laser”, Electron. Lett. vol. 29, pp. 1849-1850, 1993
24. A. Takada and H. Miyazawa, “30GHz picosecond pulse generation from actively mode-locked erbium-doped fibre laser”, Electron. Lett. vol. 26, pp. 216-217, 1993
25. N. Onodera et. al., “Frequency multiplication in actively mode-locked semiconductor lasers”, Appl. Phys. Lett., vol. 62(12), pp. 1329-1331, 1993
26. K. S. Abedin, N. Onodera and M. Hyodo, “Overcoming the repetition-rate-limitation imposed by the free spectral range of the Fabry-Perot filter used in higher-order FM modelocked lasers”, Electron. Lett. vol. 34, pp. 2264-2265, 1998
27. Z. Ahmed and N. Onodera, “High repetition rate optical pulse generation by frequency multiplication in actively modelocked fibre ring lasers”, Electron. Lett. vol. 32, pp. 455-457, 1996
28. E. Yoshida and M. Nakazawa, “80~200GHz erbium doped fibre laser using a rational harmonic mode-locking technique”, Electron. Lett. vol. 32, pp. 1370-1372, 1996
29. A. E. Siegman, Lasers (University Science Books, Mill Valley, California, 1986), Chap. 27
30. A. Takada and H. Miyazawa," 30GHz picosecond pulse generation from actively mode-locked erbium-doped fiber laser", Electron. Lett., vol. 26, pp. 216, 1990
31. X. Shan, D. Cleland, and A. Ellis," Stabilising er fiber soliton laser with pulse phase locking", Electron. Lett. vol. 28, pp. 182, 1992
32. Wey et. al., “Active harmonic modelocking of an Erbium fiber laser with intracavity Fabry-Perot filters”, J. Lightwave Technol., vol. 15, pp. 1171-1180, 1997
33. Shan et. al., “Very simple method to stabailize mode-locking Erbium fiber lasers”, Electron. Lett. vol. 32, pp. 1015-1016, 1996
34. Nakazawa et. al., “Supermode noise suppression in a harmonically modelocked fibre laser by selfphase modulation and spectral filtering”, Electron. Lett. vol. 32, pp. 461-463, 1996
35. 杜冠賢,”運用反射式光纖光柵共振器來穩定主動式諧波鎖模摻鉺光纖雷射之研究”,交通大學光電所碩士論文,199836. K. H. Tu, C. B. Huang, R. K. Lee, and Y. Lai, “Stabilization of an active harmonic modelocked Er-fiber laser with a reflective fiber grating Fabry-Perot filter”, IPC’98, Taiwan, WT2B4
37. E. Yamada, E. Yoshida, T. Kitoh, and M. Nakazawa, “Generation of terabit per second optical data pulse train, “ Electron. Lett., vol. 31, pp. 1342-1344, 1995
38. D. K. Serkland et. al., “Rate multiplication of a 59-GHz soliton source at 1550nm”, J. Lightwave Technol., vol. 16, pp. 670-677, 1998
39. C. K. Chan and L. K. Chen ,"Theoretical analysis of high-repetition rate optical-pulse multiplication using fiber-coupler loop configuration," IEEE Photon. Technol. Lett., vol. 7, pp. 1145-1147, 1995
40. S. Arahira, S. Kutsuzawa, Y. Matsui, D. Kunimatsu, and Y. Ogawa," Repetition-frequency multiplication of mode-locked pulses using fiber dispersion," J. Lightwave Technol., vol. 16, pp. 405-410, 1998
41. I. Shake et. al., “High-repetition-rate optical pulse generation by using chirped optical pulses”, Electron. Lett., vol. 34, pp. 792-793, 1998
42. C. B. Huang and Y. Lai, “Lossless pulse intensity repetition rate multiplication using optical all-pass filtering,” Tech. Dig. Conf. Laser and Electro-Optics 1999, CTuK17,pp.120-121.
43. C. K. Madsen and G. Lenz, “Optical all-pass filters for phase response design with applications for dispersion compensation,” IEEE Photon. Technol. Lett., vol. 10, pp. 994-996, 1998
44. D. Rafiazadeh et. al., “Propagation loss measurement in semiconductor microcavity ring and disk resonators,” J. Lightwave Technol., vol. 16, pp. 1308-1314, 1998