Optical Technique, Volume. 50, Issue 2, 142(2024)
A four-level optical signal generation scheme based on DP-BPSK modulator
[1] [1] C. G. C. Index. Forecast and Methodology, 2016–2021 White Paper[EB/OL].(2018-02). https:∥www.cisco.com/c/dam/en/us/solutions/collateral/service-provider/global-cloud-index-gci/white-paper-c11-738085.pdf
[2] [2] Wei Jinlong, Cheng Qixiang, Penty Richard V, et al. 400 Gigabit Ethernet using advanced modulation formats: performance, complexity, and power dissipation[J]. IEEE Communications Magazine,2015,53(2):182—189.
[3] [3] P P Baveja, M Li, D Wang, et al. 56Gb/s PAM-4 directly modulated laser for 200G/400G data-center optical links[C]∥Optical Fiber Communications Conference & Exhibition. Los Angeles, USA:IEEE,.2017:1—3.
[4] [4] M. Mestre, F. Jorge, H. Mardoyan, et al. 100-Gbaud PAM-4 intensity-modulation direct-detection transceiver for datacenter interconnect[C]∥European Conference on Optical Communication. Dusseldorf, Germany:OSA,2016:1—3.
[5] [5] Zhong Kangping, Chen Wei, Sui Qi, et al. Experimental demonstration of 500Gbit/s short reach transmission employing PAM4 signal and direct detection with 25Gbps device[C]∥Optical Fiber Communications Conference and Exhibition. Los Angeles, USA: IEEE,2015:Th3A.3.
[6] [6] Zhang Qiang, N. Stojanovic, Xie Changsong, et al. Transmission of single lane 128 Gbit/s PAM-4 signals over an 80 km SSMF link, enabled by DDMZM aided dispersion pre-compensation[J]. Optics Express,2016,24(21):24580—24591.
[7] [7] IEEE 802.3. IEEE Std 802.3cn-2019 (Amendment to IEEE Std 802.3-2018 as amended by IEEE Std 802.3cb-2018, IEEE Std 802.3bt-2018, and IEEE Std 802.3cd-2018): IEEE Standard for Ethernet - Amendment 4: Physical Layers and Management Parameters for 50Gb/s, 200Gb/s, and 400Gb/s Operation over Single-Mode Fiber[S]. New York. IEEE,2019.
[8] [8] Li Miaofeng, Wang Lei, Li Xiang, et al. Silicon intensity Mach-Zehnder modulator for single lane 100Gb/s applications[J]. Photonics Research,2018,6(2):109—116.
[9] [9] Liang Chenyu, Zhang Wenjia, Sun Lin, et al. 56Gb/s PAM-4 Transmission Over 5km SSMF Using Photonic Digital-to-analog Converter (PDAC) based on polarization multiplexing[C]∥Asia Communication & Photonics Conference. Wuhan, China:. OSA,2016:AF1C.7.
[10] [10] S Bae, B G Kim, Y C Chung. Generation of high-speed PAM4 signal by overdriving two Mach-Zehnder modulators[J]. OSA Continuum,2019,2(2):486—494.
[11] [11] Huang WanJou, Wei Chiachien, Chen Jyehong. Optical DAC for generation of PAM4 using parallel electro-absorption modulators[C]∥European Conference on Optical communication. Dusseldorf, Germany:OSA,2016:1—3.
[12] [12] Shao Sizhu, Ding Jianfeng, Zheng Lingchen, et al. 90Gb/s PAM4 and OOK optical signal generation by using the dual-arm-drive silicon mach-zehnder modulator[C]∥Application and Technology, San Jose, California United State:OSA,2018:JW2A.2.
[13] [13] Xu Jianfeng, Du Jiangbing, Zhang Wenjia, et al. Up to 100Gbps single lambda PAM4 generation by dual-drive Mach-Zehnder modulator and transmission over 5km SSMF[C]∥International Conference on Optical Communication and Networks. Hangzhou, China:IEEE,2016:1—3.
[14] [14] Shen Ying, Liu Wei, You Shanhong, et al. Generation of PAM4 signal over 10km multi core fiber using DMLs and photodiode[C]∥International Conference on Advanced Infocomm Technology. Stockholm, Sweden:IEEE,2018:300—303.
[15] [15] Yu Jianjun, Zhou Xiang, S Gupta, et al. A novel scheme to generate 112.8Gb/s PM-RZ-64QAM optical signal[J]. IEEE Photonics Technology Letters,2010,22(2):115—117.
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HU Xia, ZHAO Li. A four-level optical signal generation scheme based on DP-BPSK modulator[J]. Optical Technique, 2024, 50(2): 142