Title :
Nonlinear multiplexing in optical fiber communications
Author :
Mookherjea, S. ; Yariv, A.
Author_Institution :
Caltech, Pasadena, CA, USA
Abstract :
The nonlinear evolution of a dispersion-managed soliton admits a novel nonlinear multiplexing scheme for optical communications. Information is coded onto the canonical parameters (chirp and width) characterizing the pulse. It is shown that in dispersion-managed fiber communication channels, there exists the possibility of a nonlinear multiplexing scheme, with no linear analog, that effectively multiplies the bit-rate throughput several-fold. Alternatively, the same bit-rate is achieved while relaxing the requirements on the pulse width, so that slower modulation speeds and narrowband in-line filters may be used without paying a penalty in the information-transfer rate. In addition, the scheme is insensitive to minor variations in the multiplexing parameters. The analysis is based on a Hamiltonian reduction of the dispersion-managed nonlinear Schrodinger equation, and is corroborated with direct numerical simulations.
Keywords :
Schrodinger equation; chirp modulation; multiplexing; nonlinear equations; optical fibre communication; optical fibre dispersion; optical filters; optical modulation; optical solitons; relaxation theory; telecommunication channels; Hamiltonian reduction; canonical parameters; communication channels; dispersion-managed nonlinear Schrodinger equation; dispersion-managed soliton; information coding; information-transfer rate; modulation speeds; narrowband in-line filters; nonlinear multiplexing; numerical simulations; optical fiber communications; Chirp; Communication channels; Narrowband; Optical fiber communication; Optical fiber dispersion; Optical pulses; Pulse width modulation; Solitons; Space vector pulse width modulation; Throughput;
Conference_Titel :
Optical Fiber Communications Conference, 2003. OFC 2003
Print_ISBN :
1-55752-746-6
DOI :
10.1109/OFC.2003.1248503