Chinese Journal of Lasers, Volume. 27, Issue 1, 37(2000)
Numerical Study of Apodization Profile Functions and Optimal Profiles and Lengths of a Linearly Chirped Fiber Bragg Grating
[1] [1] W. H. Loh, M. J. Cole, M. N. Zervas et al.. Complex grating structures with uniform phase masks based on the moving fiber-scanning beam technique. Opt. Lett., 1995, 20(20):2051~2053
[3] [3] K. O. Hill, F. Bilodeau, B. Malo et al.. Chirped in-fiber Bragg gratings for compensation of optical-fiber dispersion. Opt. Lett., 1994, 19(17):1314~1316
[4] [4] P. L. Mason, R. V. Penty, I. H. White. Multiple stage dispersion compensation in long haul optical fibre systems using chirped fibre Bragg gratings. Electron. Lett., 1994, 30(15):1244~1245
[5] [5] T. Erdogan. Fiber grating spectra. J. Lightwave Technol., 1997, 15(8):1277~1294
[6] [6] M. Yamada, K. Sakuda. Analysis of almost-periodic disfributed feedback slab waveguides via a fundamental matrix approach. Appl. Opt., 1987, 26(16):3474~3478
[7] [7] A. V. Oppenheim, R. W. Schafer. Digital Signal Processing Prentice-Hall. Englewood Cliffs. N. J, 1975. 239~250
[8] [8] P. S. Cross, H. Kogelnik. Sidelobe suppression in corrugated-waveguide filters. Opt. Lett., 1977, 1(1):43~45
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[in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Numerical Study of Apodization Profile Functions and Optimal Profiles and Lengths of a Linearly Chirped Fiber Bragg Grating[J]. Chinese Journal of Lasers, 2000, 27(1): 37