Tunable bandpass microwave photonic filter with largely reconfigurable bandwidth and steep shape factor based on cascaded silicon nitride micro-ring resonators

被引:11
作者
Cheng, Wei [1 ]
Lin, Dongdong [2 ]
Wang, Pengfei [1 ]
Shi, Shangqing [1 ]
Lu, Mengjia [1 ]
Wang, Jin [1 ]
Guo, Chen [1 ]
Chen, Yifei [1 ]
Cang, Zhao [3 ]
Tian, Zhuang [3 ]
Liang, Zien [3 ]
Hu, Guohua [1 ]
Yun, Binfeng [1 ]
机构
[1] Southeast Univ, Adv Photon Ctr, Nanjing 210096, Peoples R China
[2] Nanjing Normal Univ, Sch Comp & Elect Informat, Jiangsu Key Lab Optoelect Technol, Nanjing 210023, Peoples R China
[3] Southeast Univ, Sch Elect Sci & Engn, Nanjing 210096, Peoples R China
基金
中国国家自然科学基金;
关键词
Notch filters;
D O I
10.1364/OE.496771
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Bandpass microwave photonic filter (MPF) can be achieved based on the well-known phase to intensity conversion method by using phase modulation and single micro-ring resonator (MRR) notch filter. Since MRR could introduce residual phase in handling one optical sideband, the out-of-band radio frequency (RF) rejection ratio and the shape factor of the bandpass MPF are very limited. Here, by introducing another MRR to handle the other optical sideband, the residual phase can be greatly suppressed, thus the filter's performance can be greatly improved. The proposed bandpass MPF was both verified theoretically and experimentally. Compared with the single MRR, the out-of-band RF rejection ratio and the shape factor were improved by 20 dB and 1.67, respectively. Furthermore, the bandpass MPF's bandwidth is reconfigurable by adjusting the optical carrier's frequency or the two MRRs' amplitude coupling coefficients. The bandpass MPF's center frequency is also tunable by changing the resonant wavelengths of two MRRs in the opposite direction simultaneously. Experimentally, bandwidth reconfiguration from 0.38 GHz to 15.74 GHz, the shape factor optimization from 2 to 1.23, and frequency tuning from 4 GHz to 21.5 GHz were achieved. We believe that the proposed bandpass MPF has great potential for microwave photonic signal processing. (C) 2023 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:25648 / 25661
页数:14
相关论文
共 27 条
[21]   Highly reconfigurable silicon integrated microwave photonic filter towards next- generation wireless communication [J].
Tao, Zihan ;
Tao, Yuansheng ;
Jin, Ming ;
Qin, Jun ;
Chen, Ruixuan ;
Shen, Bitao ;
Wu, Yichen ;
Shu, Haowen ;
Yu, Shaohua ;
Wang, Xingjun .
PHOTONICS RESEARCH, 2023, 11 (05) :682-694
[22]   TriPleX: a versatile dielectric photonic platform [J].
Worhoff, Kerstin ;
Heideman, Rene G. ;
Leinse, Arne ;
Hoekman, Marcel .
ADVANCED OPTICAL TECHNOLOGIES, 2015, 4 (02) :189-207
[23]   Silicon-on-insulator-based microwave photonic filter with widely adjustable bandwidth [J].
Xu, Lu ;
Hou, Jie ;
Tang, Haitao ;
Yu, Yuan ;
Yu, Yu ;
Shu, Xuewen ;
Zhang, Xinliang .
PHOTONICS RESEARCH, 2019, 7 (02) :110-115
[24]   Hundred megahertz microwave photonic filter based on a high Q silicon nitride multimode microring resonator [J].
Yang, Huimin ;
Li, Jing ;
Hu, Guohua ;
Yun, Binfeng ;
Cui, Yiping .
OSA CONTINUUM, 2020, 3 (06) :1445-1455
[25]   On-chip silicon photonic integrated frequency-tunable bandpass microwave photonic filter [J].
Zhang, Weifeng ;
Yao, Jianping .
OPTICS LETTERS, 2018, 43 (15) :3622-3625
[26]   Positive link gain microwave photonic bandpass filter using Si3N4-ring-enabled sideband filtering and carrier suppression [J].
Zhu, Zihang ;
Liu, Yang ;
Merklein, Moritz ;
Daulay, Okky ;
Marpaung, David ;
Eggleton, Benjamin J. .
OPTICS EXPRESS, 2019, 27 (22) :31727-31740
[27]   Flexible RF filter using a nonuniform SCISSOR [J].
Zhuang, Leimeng .
OPTICS LETTERS, 2016, 41 (06) :1118-1121