• 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、*
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[J]. Chinese Optics Letters, 2023, 21(2): 023901 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[J]. Chinese Optics Letters, 2023, 21(2): 023901
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