Title :
Phase-Coded Millimeter-Wave Waveform Generation Using a Spatially Discrete Chirped Fiber Bragg Grating
Author :
Wang, Chao ; Yao, Jianping
Author_Institution :
Microwave Photonics Res. Lab., Univ. of Ottawa, Ottawa, ON, Canada
Abstract :
An all-optical approach to generating phase-coded millimeter-wave (mm-wave) waveforms based on optical pulse shaping, using a spatially discrete chirped fiber Bragg grating (SD-CFBG) is proposed and experimentally demonstrated. Since no electro-optical modulator is used, the system is simpler and less costly. In the proposed system, the spectrum of an optical pulse is spectrally sliced by a sinusoidal comb filter. The SD-CFBG is then used as a special dispersive element to map the shaped spectrum to a temporal waveform based on dispersive Fourier transform, and at the same time, to introduce the desired time delay jumps, which are translated to phase shifts. A simplified system without using the comb filter is also studied, in which a single SD-CFBG is employed to simultaneously perform spectral slicing, frequency-to-time mapping, and temporal coding. The proposed technique is validated by two experiments in which two phase-coded mm-wave waveforms at 28.5 GHz and 47.2 GHz with, respectively, a 7-bit and 11-bit Barker code are generated.
Keywords :
Bragg gratings; Fourier transform optics; optical fibre filters; optical pulse generation; optical pulse shaping; Barker code; dispersive Fourier transform; dispersive element; frequency 28.5 GHz; frequency 47.2 GHz; frequency-to-time mapping; optical pulse shaping; phase-coded millimeter-wave waveform generation; sinusoidal comb filter; spatially discrete chirped fiber Bragg grating; spectral slicing; temporal coding; temporal waveform; time delay jumps; Delay; Delay effects; Encoding; Microwave filters; Microwave photonics; Dispersion; fiber Bragg grating (FBG); microwave photonics; optical pulse shaping; phase coding; radar;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2012.2206580