Optical switch and optical waveform monitoring device utilizing optical switch
A monitoring device and optical switch technology, applied in time division optical multiplexing systems, optics, nonlinear optics, etc., can solve the problems of signal quality degradation, narrow wavelength range, and reduced switching efficiency, and achieve excellent optical S/N ratio. Effect
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Embodiment 1
[0204] Fig. 40 shows a configuration for testing the characteristics of the optical switch of the present invention. The test environment is described below.
[0205] A highly nonlinear fiber (HNLF) corresponds to the nonlinear fiber 14 in FIG. 1 . Its length is 20m, and the third-order nonlinear coefficient γ is 20.4W -1 km -1 , zero dispersion wavelength λ 0 1579nm, the dispersion slope is 0.03ps / nm 2 / km. The first mode-locked fiber laser (MLFL1) generates a series of pulses with a repetition rate of 10 GHz and a wavelength λs in the C-band. by LiNbO 3 Intensity modulator (LN, 10Gbps, PRBS: 2 23 -1) The series of optical pulses are modulated, and the modulated signals are multiplexed by optical time division multiplexing to generate a data signal Es of 160-640 Gbps. The data signal Es is input into the high nonlinear fiber HNLF together with the control pulse Ep generated by the second mode-locked fiber laser (MLFL2). The wavelength of the control pulse Ep and the ...
Embodiment 2
[0210] Experimental data for an optical demultiplexer that separates 10 Gbps signals from 160 Gbps, 320 Gbps, and 640 Gbps optical time division multiplexed signals Es is provided below. The pulse width of the signal Es of 160 Gbps is 1.6 ps, the pulse width of the signal Es of 320 Gbps is 0.75 ps, and the pulse width of the signal Es of 640 Gbps is 0.65 ps. The pulse width of the control pulse Ep is 0.9 ps.
[0211] Figure 43 shows the received power P of the separated signal R Graph of measured values of BER (Bit Error Rate) when changes occur. The average power of the control pulses is +21.8dBm (equivalent to peak power = 15W). The average power of the 160Gbps input signal Es input to the optical switch is -5dBm.
[0212]At 160Gbps, the bit error rate was measured for each signal wavelength λs=1535nm, 1540nm, 1550nm, and 1560nm. As a result, error-free operation with a power loss of less than 0.2dB is achieved for all wavelengths within the C-band (BER=10 -9 ). For ...
Embodiment 3
[0214] Shown is a signal waveform observed using an oscilloscope after sampling with the optical switch of the present invention. 44A to 44E show eye patterns observed under the same pulse width conditions as in Example 2. FIG. The sampling rate is 311MHz. Excellent eye patterns were obtained in the range of 160 to 640Gbps. This fine temporal resolution greatly facilitates light sampling with high contrast across the entire C-band range.
[0215] The following documents provide descriptions of Examples 1 to 3 above. S. Watanabe, et al. "Novel Fiber Kerr-Switch with Parametric Gain: Demonstration of Optical Demultiplexing and Sampling up to 640Gb / s", 30 th European Conference on Optical Communication (ECOC 2004), Stockholm, Sweden, September 2004, Post-deadline paper Th4.1.6, pp12-13.
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