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Tunable microwave signal generation based on an Opto-DMD processor and a photonic crystal fiber 被引量:1

Tunable microwave signal generation based on an Opto-DMD processor and a photonic crystal fiber
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摘要 Frequency-tunable microwave signal generation is proposed and experimentally demonstrated with a dual-wavelength single-longitudinal-mode (SLM) erbium-doped fiber ring laser based on a digital Opto-DMD processor and four-wave mixing (FWM) in a high-nonlinear photonic crystal fiber (PCF). The high-nonlinear PCF is employed for the generation of the FWM to obtain stable and uniform dual-wavelength oscillation. Two different short passive sub-ring cavities in the main ring cavity serve as mode filters to make SLM lasing. The two lasing wavelengths are electronically selected by loading different gratings on the Opto-DMD processor controlled with a computer. The wavelength spacing can be smartly adjusted from 0.165 nm to 1.08 nm within a tuning accuracy of 0.055 nm. Two microwave signals at 17.23 GHz and 27.47 GHz are achieved. The stability of the microwave signal is discussed. The system has the ability to generate a 137.36-GHz photonic millimeter signal at room temperature. Frequency-tunable microwave signal generation is proposed and experimentally demonstrated with a dual-wavelength single-longitudinal-mode (SLM) erbium-doped fiber ring laser based on a digital Opto-DMD processor and four-wave mixing (FWM) in a high-nonlinear photonic crystal fiber (PCF). The high-nonlinear PCF is employed for the generation of the FWM to obtain stable and uniform dual-wavelength oscillation. Two different short passive sub-ring cavities in the main ring cavity serve as mode filters to make SLM lasing. The two lasing wavelengths are electronically selected by loading different gratings on the Opto-DMD processor controlled with a computer. The wavelength spacing can be smartly adjusted from 0.165 nm to 1.08 nm within a tuning accuracy of 0.055 nm. Two microwave signals at 17.23 GHz and 27.47 GHz are achieved. The stability of the microwave signal is discussed. The system has the ability to generate a 137.36-GHz photonic millimeter signal at room temperature.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2014年第6期304-310,共7页 中国物理B(英文版)
基金 supported by the National Basic Research Program of China(Grant No.2010CB327605) the Specialized Research Fund for the Doctoral Program of Higher Education,China(Grant No.20120005120021) the Fundamental Research Funds for the Central Universities,China(Grant No.2013RC1202) the Program for New Century Excellent Talents in University,China(Grant No.NECT-11-0596) the Beijing Nova Program,China(Grant No.2011066)
关键词 fiber lasers four-wave mixing Opto-DMD processor tunable microwave signal fiber lasers, four-wave mixing, Opto-DMD processor, tunable microwave signal
作者简介 Corresponding author. E-mail: tomwangbupt@163.com
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  • 1O'Reilly J J, Lane P M, Heidemann R and Hofstertt R 1992 Electron. Lett. 28 2309.
  • 2Hedekvist P O, Olsson B E and Wiberg A 2004 Journal of Lightwave Technology 22 882.
  • 3GlieseU, Nielsen T N, Bruun M, Christensen E L, Stubkjaer K E, Lind- gren S and Broberg B 1992 IEEE Photon. Technol. Lett. 4 936.
  • 4Bordonaalli A C, Walton C and Seeds A 1999 Journal of Lightwave Technology 17 328.
  • 5Genest J, Chamberl M, Tremblay P and Tetu M 1997 IEEEJ. Quantum Electron. 33 989.
  • 6Fan Z and Dagenais M 1997 IEEE Trans. Microwave Theory Technol. 45 1296.
  • 7Goldberg L, Taylor H F, Weller J F and Bloom D M 1983 Electron. Lett. 19 491.
  • 8Williams K J, Goldberg L, Esman R D, Dagenais M and Weller J F 1989 Electron. Lett. 25 1242.
  • 9Chen X F, Deng Z C and Yao J P 2006 IEEE Trans. Microwave Theroy Technol. 54 804.
  • 10Chen G J, Huang D X, Zhang X L and Cao H 2008 Opt. Lett. 33 554.

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