Optical pulse time spreading device

Optical waveguides – With optical coupler – Input/output coupler

Reexamination Certificate

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C385S014000

Reexamination Certificate

active

11520661

ABSTRACT:
The present invention is an SSFBG with which there are few restrictions on the code that can be set and the overall length of which is short. This SSFBG has four unit FBGs the Bragg reflection wavelengths of which are λ1, λ2, λ3, and λ4disposed with a part where the unit FBGs overlap one another in the waveguide direction of the optical fiber. The left end of the horizontal axis corresponds to the position of the I/O terminal of the SSFBG and the right end of the horizontal axis corresponds to the terminal on the opposite side from the I/O terminal of the SSFBG. The Bragg reflection wavelengths λ1, λ2, λ3, and λ4of the four unit FBGs are λ1=1543.28 nm, λ2=1543.60 nm, λ3=1543.92 nm, and λ4=1544.24 nm respectively. Codes (λ1, λ2, λ3, and λ4) used in the time-spreading/wavelength hopping system are established for the SSFBG by disposing the four unit FBGs at equal intervals such that the interval therebetween is 12.8 mm.

REFERENCES:
patent: 5995255 (1999-11-01), Giles
patent: 7174103 (2007-02-01), Nishiki et al.
patent: 2004/0175177 (2004-09-01), Lee et al.
patent: 2006/0018595 (2006-01-01), Sasaki
patent: 2007/0122153 (2007-05-01), Tamai
“0Gb/sx2ch Signal Unrepeated Transmission Over 100 km of Data Rate Enhanced Time-spread/Wavelength-Hopping OCDM Using 2.5-Gb/s FBG En/Decoder”, S. Kutsuzawa et al., IEEE Photonics Technology Letters, vol. 15, No. 2, pp. 317-319 Feb. 2003.
“FBG based Optical Code En/Decoder for long distance transmission without dispersion compensating devices”, Hideyuki Iwamura, et al., Optical Society of America, 2004 WK6.
“Experimental Demonstration and Scalability Analysis of a Four-Node 102-Gchip/s Fast Frequency-Hopping Time-Spreading Optical CDMA Network”, Varghese Baby, et al, IEEE Photonics Technology Letters, vol. 17, No. 1, pp. 253-255, Jan. 2005.

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