Directionally Resolved Measurement and Modeling of THz Band Propagation Channels

Design and assessment of THz communications systems, which will form an essential part of 6G, require an understanding of the propagation channels the systems will operate in. This paper presents investigations of the channel characteristics in various scenarios at 145 GHz, which is the band current...

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Veröffentlicht in:IEEE Open Journal of Antennas and Propagation 2022, Vol.3, p.663-686
Hauptverfasser: Gomez-Ponce, Jorge, Abbasi, Naveed A., Willner, Alan E., Zhang, Charlie J., Molisch, Andreas F.
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Sprache:eng
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Zusammenfassung:Design and assessment of THz communications systems, which will form an essential part of 6G, require an understanding of the propagation channels the systems will operate in. This paper presents investigations of the channel characteristics in various scenarios at 145 GHz, which is the band currently envisioned for the first round of deployments. In particular, we review several extensive measurement campaigns performed by the University of Southern California in both outdoor and indoor environments. We present the measurement and evaluation methodology and sample results that illustrate the dominant propagation effects in different environments. We then summarize the parameters of the statistical channel models for path loss, delay dispersion, and angular dispersion. Based on these results, we find that even in NLoS (non-line-of-sight) situations, Gbit/s communications can be sustained over a 100 m distance; that (for an antenna gain of 20 dB), there is considerable delay dispersion, requiring tens of equalizer taps, and that angular dispersion is significant in both LoS and NLoS situations. The channel parameters can be thus used as a basis for system design and evaluation under realistic operating conditions.
ISSN:2637-6431
2637-6431
DOI:10.1109/OJAP.2022.3181326