Tunable Multiband Microwave Photonic Filters

被引:28
|
作者
Fok, Mable P. [1 ]
Ge, Jia [1 ]
机构
[1] Univ Georgia, Coll Engn, Lightwave & Microwave Photon Lab, Athens, GA 30602 USA
关键词
microwave photonics; filters; multiband filters; multiband communications; STIMULATED BRILLOUIN-SCATTERING; LOOP MIRROR FILTER; BANDPASS FILTER; PHASE MODULATOR; RING LASER; CHIP; CAPABILITIES; SELECTIVITY; PROCESSOR; FIBERS;
D O I
10.3390/photonics4040045
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The increasing demand for multifunctional devices, the use of cognitive wireless technology to solve the frequency resource shortage problem, as well as the capabilities and operational flexibility necessary to meet ever-changing environment result in an urgent need of multiband wireless communications. Spectral filter is an essential part of any communication systems, and in the case of multiband wireless communications, tunable multiband RF filters are required for channel selection, noise/interference removal, and RF signal processing. Unfortunately, it is difficult for RF electronics to achieve both tunable and multiband spectral filtering. Recent advancements of microwave photonics have proven itself to be a promising candidate to solve various challenges in RF electronics including spectral filtering, however, the development of multiband microwave photonic filtering still faces lots of difficulties, due to the limited scalability and tunability of existing microwave photonic schemes. In this review paper, we first discuss the challenges that were facing by multiband microwave photonic filter, then we review recent techniques that have been developed to tackle the challenge and lead to promising developments of tunable microwave photonic multiband filters. The successful design and implementation of tunable microwave photonic multiband filter facilitate the vision of dynamic multiband wireless communications and radio frequency signal processing for commercial, defense, and civilian applications.
引用
收藏
页数:20
相关论文
共 50 条
  • [21] IIR Microwave Photonic Filters Based on Homogeneous Multicore Fibers
    Huo, Liang
    Gan, Lin
    Shen, Li
    Tang, Ming
    Fu, Songnian
    Yang, Chen
    Tong, Weijun
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2018, 36 (19) : 4298 - 4304
  • [22] Ultra-high suppression microwave photonic bandstop filters
    Marpaung, David
    Morrison, Blair
    Pagani, Mattia
    Pant, Ravi
    Eggleton, Benjamin J.
    CHINESE SCIENCE BULLETIN, 2014, 59 (22): : 2684 - 2692
  • [23] Photonic Generation of Linearly Chirped Microwave Waveforms With Tunable Parameters
    Zhang, Hao
    Zhang, Fangzheng
    Pan, Shilong
    Ye, Xingwei
    Liu, Shifeng
    Chen, Hao
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2020, 32 (17) : 1037 - 1040
  • [24] Microwave Photonic Hybrid Phase-Time Shifter and Widely Tunable Microwave Filter
    Li, Liwei
    Yi, Xiaoke
    Huang, Thomas X. H.
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2012, 24 (24) : 2288 - 2291
  • [25] Efficient architecture for WDM photonic microwave filters
    Vidal, B
    Polo, V
    Corral, JL
    Martí, J
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2004, 16 (01) : 257 - 259
  • [26] All-Optical Continuously Tunable Flat-Passband Microwave Photonic Notch Filter
    Wang, X.
    Yang, J.
    Chan, E. H. W.
    Feng, X.
    Guan, B.
    IEEE PHOTONICS JOURNAL, 2015, 7 (01):
  • [27] The use of photonic techniques in tunable microwave oscillators
    Madziar, K.
    Szymanska, A.
    Galwas, B.
    ELECTRON TECHNOLOGY CONFERENCE 2013, 2013, 8902
  • [28] Nonuniformly Spaced Photonic Microwave Delay-Line Filters and Applications
    Dai, Yitang
    Yao, Jianping
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2010, 58 (11) : 3279 - 3289
  • [29] High-Order Infinite Impulse Response Microwave Photonic Filters
    Chan, Erwin H. W.
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2011, 29 (12) : 1775 - 1782
  • [30] Tunable microwave photonic filters based on double-sideband modulation and linear chirped fibre Bragg gratings
    Li, Xiaoyun
    Liu, Jinmei
    Zou, Zhixin
    Zhan, Li
    JOURNAL OF MODERN OPTICS, 2021, 68 (12) : 641 - 646