• Frontiers of Optoelectronics
  • Vol. 5, Issue 2, 200 (2012)
Lei LEI*, Yu YU, Fei LOU, Zheng ZHANG, Lei XIANG, and Xinliang ZHANG
Author Affiliations
  • Wuhan National Laboratory for Optoelectronics, College of Optoelectronic Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
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    DOI: 10.1007/s12200-012-0263-0 Cite this Article
    Lei LEI, Yu YU, Fei LOU, Zheng ZHANG, Lei XIANG, Xinliang ZHANG. A simple experimental scheme for M-QAM optical signals generation[J]. Frontiers of Optoelectronics, 2012, 5(2): 200 Copy Citation Text show less
    References

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    [2] Lu G W, Sakamoto T, Kawanishi T. Rectangular QPSK for generation of optical eight-ary phase-shift keying. Optics Express, 2011, 19 (19): 18479-18485

    [3] Bakhtiari Z, Wang J, Wu X X, Yang J Y, Nuccio S R, Hellwarth R W, Willner A E. Demonstration of 10-40-Gbaud baud-rate-tunable optical generation of 16-QAM from a QPSK signal using a variable DGD element. In: 2011 Conference on Lasers and Electro-Optics (CLEO), CThX5

    [4] Seimetz M, Noelle M, Patzak E. Optical systems with high-order DPSK and star QAM modulation based on interferometric direct detection. Journal of Lightwave Technology, 2007, 25(6): 1515-1529

    [5] Kobayashi1 T, Sano A, Masuda H, Ishihara K, Yoshida E, Miyamoto Y, Yamazaki H, Yamada T. 160-Gb/s polarizationmultiplexed 16-QAM long-haul transmission over 3123 km using digital coherent receiver with digital PLL based frequency offset compensator. In: 2010 Conference on OFC/NFOEC. 2010, OTuD1

    [6] Seimetz M. Performance of coherent optical square 16-QAMsystems based on IQ-transmitters and homodyne receivers with digital phase estimation. In: Optical Fiber Communication Conference, 2006 and the 2006 National Fiber Optic Engineers Conference. 2006, 10

    [7] Gnauck A H,Winzer P J, Chandrasekhar S, Liu X, Zhu B, Peckham D W. 10 224-Gb/s WDM transmission of 28-Gbaud PDM16-QAM on a 50-GHz grid over 1200 km of fiber. In: 2010 Conference on OFC/NFOEC. 2010, PDPB8

    [8] Yu J J. Zhou X, Gupta S, Huang YK, Huang M F. A novel scheme to generate 112.8-Gb/s PM-RZ-64QAM optical signal. IEEE Photonics Technology Letters, 2010, 22(2): 115-117

    [9] Yu J J, Zhou X, Huang Y K, Gupta S, Huang M F, Wang T. 112.8-Gb/s PM-RZ-64QAM optical signal generation and transmission on a 12.5 GHz WDM grid. In: 2010 Conference on OFC/NFOEC. 2010, OThM1

    [10] Nakazawa M, Okamoto S, Omiya T, Kasai K, Yoshida M. 256 QAM (64 Gbit/s) Coherent Optical Transmission over 160 km with an Optical Bandwidth of 5.4 GHz. IEEE Photonics Techonology Letters, 2010: 185-187

    [11] Yamazaki H, Yamada T, Goh T, Sakamaki Y, Kaneko A. 64QAM modulator with a hybrid configuration of silica PLCs and LiNbO3 phase modulators for 100-Gb/s applications. In: 35th European Conference on Optical Communication (ECOC), 2009, 1-4

    Lei LEI, Yu YU, Fei LOU, Zheng ZHANG, Lei XIANG, Xinliang ZHANG. A simple experimental scheme for M-QAM optical signals generation[J]. Frontiers of Optoelectronics, 2012, 5(2): 200
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