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Shiwei Wang

Researcher at Zhejiang University

Publications -  27
Citations -  332

Shiwei Wang is an academic researcher from Zhejiang University. The author has contributed to research in topics: Terahertz radiation & Photonics. The author has an hindex of 6, co-authored 24 publications receiving 105 citations.

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100 Gbit/s THz Photonic Wireless Transmission in the 350-GHz Band With Extended Reach

TL;DR: In this article, a narrowband unitraveling-carrier photodiode (UTC-PD) is used for heterodyne generation of terahertz (THz) communication signals, which is transparent to optical modulation formats.
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26.8-m THz wireless transmission of probabilistic shaping 16-QAM-OFDM signals

TL;DR: This work presents an experimental demonstration of a single-channel THz radio-over-fiber (RoF) system operating at 350 GHz, achieving beyond 100 Gbit/s data rate over a 10-km fiber plus a >20-m wireless link, without using any THz amplifiers.
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2 × 300 Gbit/s Line Rate PS-64QAM-OFDM THz Photonic-Wireless Transmission

TL;DR: In this article, a hybrid THz photonic-wireless transmission based on a THz orthogonal polarization dual-antenna scheme is presented, achieving a potential total system throughput of 612.65 Gbit/s with an average net spectral efficiency of 4.445 bit/s/Hz per antenna.
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Beyond 100 Gb/s Optoelectronic Terahertz Communications: Key Technologies and Directions

TL;DR: Technical insight is given into the key technologies of optoelectronic terahertz communications with high data rates in the physical layer, including approaches of broadband devices, baseband signal processing technologies, and design of advanced transmission system architectures.
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A Unified System With Integrated Generation of High-Speed Communication and High-Resolution Sensing Signals Based on THz Photonics

TL;DR: A unified terahertz (THz) system operating in the 300 GHz band, with a potential of simultaneously enabling high-speed communication and high-resolution ranging over a common optical infrastructure is proposed and experimentally demonstrated.