• Frontiers of Optoelectronics
  • Vol. 2, Issue 4, 389 (2009)
Taorong GONG1、2、*, Fengping YAN1、2, Dan LU1、2, Ming CHEN1、2, Peng LIU1、2, Peilin TAO1、2, Muguang WANG1、2, Tangjun LI1、2, and Shuisheng JIAN1、2
Author Affiliations
  • 1Key Laboratory of All-Optical Networks and Advanced Communication Networks, Ministry of Education, Beijing 100044, China
  • 2Institute of Light Wave Technology, Beijing Jiaotong University, Beijing 100044, China
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    DOI: 10.1007/s12200-009-0072-2 Cite this Article
    Taorong GONG, Fengping YAN, Dan LU, Ming CHEN, Peng LIU, Peilin TAO, Muguang WANG, Tangjun LI, Shuisheng JIAN. 160-Gbit/s clock recovery using an electro-absorption modulator and 40-Gbit/s ETDM demultiplexer[J]. Frontiers of Optoelectronics, 2009, 2(4): 389 Copy Citation Text show less
    References

    [1] Tong D T K, Deng K-L, Mikkelsen B, Raybon G, Dreyer K F, Johnson J E. 160 Gbit/s clock recovery using electroabsorption modulator-based phase-locked loop. Electronics Letters, 2000, 36(23): 1951-1952

    [2] Boerner C, Schubert C, Schmidt C, Hilliger E, Marembert V, Berger J, Ferber S, Dietrich E, Ludwig R, Schmauss B, Weber H-G. 160Gbit/s clock recovery with electro-optical PLL using a bidirectionally operated electroabsorption modulator as phase comparator. In: Proceedings of Optical Fiber Communication Conference (OFC). 2003, FF3

    [3] Hall K L, Moriarty D T, Hakimi H, Hakimi F, Robinson B S, Rauschenbach K A. An ultrafast variable optical delay technique. IEEE Photonics Technology Letters, 2000, 12(2): 208-210

    [4] He J, Chan K T.Wavelength-switchable all optical clock recovery at 10 Gbit/s based on semiconductor fiber ring laser. Optics Express, 2005, 13(1): 327-335

    [5] Salem R, Ahmadi A A, Tudury G E, Carter GM, Murphy T E. Twophoton absorption for optical clock recovery in OTDM networks. Journal of Lightwave Technology, 2006, 24(9): 3353-3362

    [6] Zhang F. Research on the key technologies of 40 Gb/s long-haul transmission and all optical signal process. Dissertation for the Doctoral Degree. Beijing: Beijing Jiaotong University, 2008, 21-31

    [7] Morishita K, Takashina K. Polarization properties of fused fiber couplers and polarizing beam splitters. Journal of Lightwave Technology, 1991, 9(11): 1503-1507

    [8] Zhao J, Cai L B, Li T J. Experimental demonstration on 4×10 Gbit/s optical time domain multiplexing signal. Photon Technology, 2005, 8(2): 18-21 (in Chinese)

    [9] Murai H, Kagawa M, Tsuji H, Fujii K. EA-modulator-based optical time division multiplexing/demultiplexing techniques for 160-Gb/s optical signal transmission. IEEE Journal of Selected Topics in Quantum Electronics, 2007, 13(1): 70-78

    [10] Ohara T, Takara H, Shake I, Yamada T, Ishii M, Ogawa I, Okamoto M, Kawanishi S. Highly stable 160-Gb/s OTDM technologies based on integrated MUX/DEMUX and drift-free PLL-type clock recovery. IEEE Journal of Selected Topics in Quantum Electronics, 2007, 13(1): 40-48

    [11] Born M, Wolf E. Principles of Optics. 7th ed. Cambridge: Cambridge University Press, 1999, 142-221

    [12] Anandarajah P M, Clarke A M, Guignard C, Bramerie L, Barry L P, Harvey J D, Simon J C. System-performance analysis of optimized gain-switched pulse source employed in 40- and 80-Gb/s OTDM systems. Journal of Lightwave Technology, 2007, 25(6): 1495-1502

    Taorong GONG, Fengping YAN, Dan LU, Ming CHEN, Peng LIU, Peilin TAO, Muguang WANG, Tangjun LI, Shuisheng JIAN. 160-Gbit/s clock recovery using an electro-absorption modulator and 40-Gbit/s ETDM demultiplexer[J]. Frontiers of Optoelectronics, 2009, 2(4): 389
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