Author Affiliations
Abstract
1 School of Electronic Information, Qingdao University, Qingdao 266071, China
2 Communication Devices and Technology Engineering Research Center, School of Computer and Communication Engineering, Tianjin University of Technology, Tianjin 300384, China
A widely tunable microwave photonic notch filter with adjustable bandwidth based on multi-wavelength fiber laser is proposed and demonstrated. The multi-wavelength fiber laser generates the multi-taps of the microwave photonic filter (MPF). In order to obtain notch frequency response, a Fourier-domain optical processor (FD-OP) is introduced to control the amplitude and phase of the optical carrier and phase modulation sidebands. By adjusting the polarization controller (PC), different numbers of taps are got, such as 6, 8, 10 and 12. And the wavelength spacing of the multi-wavelength laser is 0.4 nm. The bandwidth of the notch filter is changed by adjusting the number of taps and the corresponding bandwidths are 4.41 GHz, 3.30 GHz, 2.64 GHz and 2.19 GHz, respectively. With the additional phase shift introduced by FD-OP, the notch position is continuously tuned in the whole free spectral range (FSR) of 27.94 GHz. The center frequency of the notch filter can be continuously tuned from 13.97 GHz to 41.91 GHz.
光电子快报(英文版)
2017, 13(4): 259
Author Affiliations
Abstract
1 Communication Devices and Technology Engineering Research Center, School of Computer and CommunicationEngineering, Tianjin University of Technology, Tianjin 300384, China
2 School of Electronic and Information Engineering, Qingdao University, Qingdao 266071, China
A continuously tunable microwave photonic notch filter with complex coefficient based on phase modulation is proposed and demonstrated. The complex coefficient is generated using a Fourier-domain optical processor (FD-OP) to control the amplitude and phase of the optical carrier and radio-frequency (RF) phase modulation sidebands. By controlling the FD-OP, the frequency response of the filter can be tuned in the full free spectral range (FSR) without changing the shape and the FSR of the frequency response. The results show that the center frequency of the notch filter can be continuously tuned from 17.582 GHz to 29.311 GHz with FSR of 11.729 GHz. The shape of the frequency response keeps unchanged when the phase is tuned.
光电子快报(英文版)
2017, 13(1): 13
Author Affiliations
Abstract
1 Communication Devices and Technology Engineering Research Center, School of Computer and Communication Engineering, Tianjin University of Technology, Tianjin 300384, China
2 School of Electronic and Information Engineering, Qingdao University, Qingdao 266071, China
A microwave photonic notch filter with a complex coefficient is proposed and demonstrated based on four wave mixing (FWM). FWM effect of two single-frequency laser beams occurs in a highly nonlinear fiber (HNLF), and multi-wavelength optical signals are generated and used to generate the multi-tap of microwave photonic filter (MPF). The complex coefficient is generated by using a Fourier-domain optical processor (FD-OP) to control the amplitude and phase of the optical carrier and phase modulation sidebands. The results show that this filter can be changed from bandpass filter to notch filter by controlling the FD-OP. The center frequency of the notch filter can be continuously tuned from 5.853 GHz to 29.311 GHz with free spectral range (FSR) of 11.729 GHz. The shape of the frequency response keeps unchanged when the phase is tuned.
光电子快报(英文版)
2016, 12(6): 417
曹晔 1,2,3,*杨菁芃 1,2童峥嵘 1,2许东 1,2
作者单位
摘要
1 天津理工大学 计算机与通信工程学院
2 教育部通信器件与技术工程研究中心, 天津 300384
3 青岛大学 电子信息学院, 山东 青岛 266071
提出一种基于高双折射光子晶体光纤与光纤环的超宽带可调谐微波光子滤波器.以多波长光纤激光器作为光源, 向高双折射光子晶体光纤内填充温敏液体, 通过改变填充温敏液体的温度, 高双折射光子晶体光纤可具有不同的双折射, 得到不同波长间隔的激光, 从而使微波光子滤波器具有不同的自由频谱范围.当温度的变化范围为20~80℃时, 仿真测得微波光子滤波器自由频谱的变化范围为2.49~39.9 GHz.引入光纤环构建级联型微波光子滤波器, 滤波器的主旁瓣抑制比可提高到33.6 dB, Q值可达到499, 提高了滤波器的频率选择性.
微波光子滤波器 可调谐 相位调制 高双折射光子晶体光纤 波长间隔 Microwave photonic filter Tunable Phase modulation High birefringence photonic crystal fiber Wavelength spacing 
光子学报
2016, 45(12): 1206002

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