• Chinese Optics Letters
  • Vol. 21, Issue 2, 023901 (2023)
Hongqi Zhang1,2, Lu Zhang1,2, Zuomin Yang2, Hang Yang2..., Zhidong Lü2, Xiaodan Pang3, Oskars Ozolins3,4 and Xianbin Yu1,2,*|Show fewer author(s)
Author Affiliations
  • 1Zhejiang Lab, Hangzhou 311121, China
  • 2College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, China
  • 3Applied Physics Department, KTH Royal Institute of Technology, 10691 Stockholm, Sweden
  • 4Networks Unit, RISE Research Institutes of Sweden, 16440 Kista, Sweden
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    DOI: 10.3788/COL202321.023901 Cite this Article Set citation alerts
    Hongqi Zhang, Lu Zhang, Zuomin Yang, Hang Yang, Zhidong Lü, Xiaodan Pang, Oskars Ozolins, Xianbin Yu, "Single-lane 200 Gbit/s photonic wireless transmission of multicarrier 64-QAM signals at 300 GHz over 30 m," Chin. Opt. Lett. 21, 023901 (2023) Copy Citation Text show less

    Abstract

    Recently, wireless communication capacity has been witnessing unprecedented growth. Benefits from the optoelectronic components with large bandwidth, photonics-assisted terahertz (THz) communication links have been extensively developed to accommodate the upcoming wireless transmission with a high data rate. However, limited by the available signal-to-noise ratio and THz component bandwidth, single-lane transmission of beyond 100 Gbit/s data rate using a single pair of THz transceivers is still very challenging. In this study, a multicarrier THz photonic wireless communication link in the 300 GHz band is proposed and experimentally demonstrated. Enabled by subcarrier multiplexing, spectrally efficient modulation format, well-tailored digital signal processing routine, and broadband THz transceivers, a line rate of 72 Gbit/s over a wireless distance of 30 m is successfully demonstrated, resulting in a total net transmission capacity of up to 202.5 Gbit/s. The single-lane transmission of beyond 200 Gbit/s overall data rate with a single pair of transceivers at 300 GHz is considered a significant step toward a viable photonics-assisted solution for the next-generation information and communication technology (ICT) infrastructure.
    Ei(t)=Pi·exp{j[ωit+φi(t)]},i=1,2,3,4,

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    E1(t)=P1·[I(t)+jQ(t)]·exp{j[ω1t+φ1(t)]},

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    ETHz(t)=i=14Ei(t)·conj[i=14Ei(t)],i=1,2,3,4,k=24P1Pkcos[(ωkω1)t+φk(t)φ1(t)]k=2,3,4.

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    EIF(t)=ETHz(t)·ELO(t)k=24P1PkPLOcos[(ωkω1ωLO)t+φk(t)φ1(t)φLO(t)],k=2,3,4.

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    PRx=PTx+GTx+GRxLloss,

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    Lloss=20log4πdfc,

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    Hongqi Zhang, Lu Zhang, Zuomin Yang, Hang Yang, Zhidong Lü, Xiaodan Pang, Oskars Ozolins, Xianbin Yu, "Single-lane 200 Gbit/s photonic wireless transmission of multicarrier 64-QAM signals at 300 GHz over 30 m," Chin. Opt. Lett. 21, 023901 (2023)
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