Single-lane 200 Gbit/s photonic wireless transmission of multicarrier 64-QAM signals at 300 GHz over 30 mShow others and affiliations
2023 (English)In: Chinese Optics Letters (COL), ISSN 1671-7694, Vol. 21, no 2, article id 023901Article in journal (Refereed) Published
Abstract [en]
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.
Place, publisher, year, edition, pages
Optica Publishing Group (formerly OSA) , 2023. Vol. 21, no 2, article id 023901
Keywords [en]
photonic-wireless transmission, terahertz communication, terahertz photonics, wavelength division multiplexing, Bandwidth, Digital signal processing, Photonics, Signal to noise ratio, Wave transmission, Communication capacity, Data-rate, Multicarriers, QAM signals, Tera Hertz, Wireless communications, Wireless transmissions, Transceivers
National Category
Telecommunications
Identifiers
URN: urn:nbn:se:ri:diva-64328DOI: 10.3788/COL202321.023901Scopus ID: 2-s2.0-85151784566OAI: oai:DiVA.org:ri-64328DiVA, id: diva2:1755037
Note
Funding details: 2020LC0AD01; Funding details: National Natural Science Foundation of China, NSFC, 62101483; Funding details: Natural Science Foundation of Zhejiang Province, ZJNSF, LQ21F010015; Funding details: National Key Research and Development Program of China, NKRDPC, 2018YFB1801503, 2020YFB1805700, 2021YFB2800805; Funding text 1: This work was supported by the National Key Research and Development Program of China (Nos. 2020YFB1805700, 2018YFB1801503, and 2021YFB2800805), the National Natural Science Foundation of China (No. 62101483), the Natural Science Foundation of Zhejiang Province (No. LQ21F010015), and the Zhejiang Lab (No. 2020LC0AD01).
2023-05-052023-05-052023-06-02Bibliographically approved