Title :
Photonic Generation of Frequency Tunable Binary Phase-Coded Microwave Waveforms
Author :
Yang Chen ; Aijun Wen ; Jianping Yao
Author_Institution :
State Key Lab. of Integrated Services Networks, Xidian Univ., Xi´an, China
Abstract :
A novel photonic approach to generating a precisely π phase-shifted binary phase-coded microwave waveform with ultra-wide frequency tunable range is proposed and experimentally demonstrated. In the proposed system, a polarization modulator (PolM) functions in conjunction with a polarization controller (PC) and an optical polarizer (Pol) as an equivalent Mach-Zehnder modulator (MZM) with the bias point switchable by applying a binary-coding signal to the PolM. To generate a phase-coded microwave signal at a specific microwave frequency, the binary-coding signal is combined with a microwave signal at that frequency and applied to the PolM. By switching between the two quadrature transmission points or the maximum and the minimum transmission points, a phase-coded microwave waveform at the fundamental or doubled frequency is generated. The proposed technique is experimentally evaluated. A phase-coded microwave waveform at the fundamental and doubled frequency is generated. The tunability of the approach is also experimentally demonstrated.
Keywords :
light polarisation; microwave generation; microwave photonics; optical harmonic generation; optical modulation; optical polarisers; optical switches; optical tuning; phase coding; π phase-shifted binary phase-coded microwave waveforms; bias point; binary-coding signal; doubled frequency; equivalent Mach-Zehnder modulator; frequency tunable binary phase-coded microwave waveforms; fundamental frequency; microwave frequency; optical polarizer; phase-coded microwave signal; photonic generation; polarization controller; polarization modulator functions; quadrature transmission points; ultrawide frequency tunable range; Correlation; Microwave amplifiers; Microwave circuits; Microwave filters; Microwave photonics; Microwave phase coding; frequency doubling; microwave photonics; radar pulse compression;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2013.2286131