6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility

The Terahertz (THz) frequency band (<inline-formula> <tex-math notation="LaTeX">$0.1-3$ </tex-math></inline-formula>THz), which is anticipated to play a crucial role in 6G and future cellular systems, requires the deployment of massive antenna arrays that create hig...

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Main Authors: Dmitri Moltchanov, Olga Chukhno, Nadezhda Chukhno, Antonella Molinaro
Format: Article
Language:English
Published: IEEE 2025-01-01
Series:IEEE Open Journal of the Communications Society
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Online Access:https://ieeexplore.ieee.org/document/11111739/
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author Dmitri Moltchanov
Olga Chukhno
Nadezhda Chukhno
Antonella Molinaro
author_facet Dmitri Moltchanov
Olga Chukhno
Nadezhda Chukhno
Antonella Molinaro
author_sort Dmitri Moltchanov
collection DOAJ
description The Terahertz (THz) frequency band (<inline-formula> <tex-math notation="LaTeX">$0.1-3$ </tex-math></inline-formula>THz), which is anticipated to play a crucial role in 6G and future cellular systems, requires the deployment of massive antenna arrays that create highly directional radiation patterns. This, in turn, results in a portion of the cell operating within the near field. In these systems, even small rotations or displacements of User Equipment (UE) in the user&#x2019;s hands &#x2013; referred to as micromobility &#x2013; may cause significant fluctuations in the Signal Received Power (SRP) in the near-field due to propagation specifics and in the far-field due to beam misalignment. Given that both these factors require different mitigation strategies, understanding their relative impacts is essential. This study aims to (i) assess the qualitative effects of beam misalignment and near-field propagation in line-of-sight (LoS) conditions, and (ii) identify which factor is the dominant contributor to SRP degradation in both near and far fields. To achieve this, we propose a unified model that simultaneously captures beam misalignment, as well as near- and far-field propagation dynamics, as influenced by UE micromobility. We then characterize the time-dependent SRP variations. Our findings reveal that the impact of beam misalignment and near-field dynamics is typically of similar magnitude. Specifically, for THz antennas of <inline-formula> <tex-math notation="LaTeX">$128\times {128}$ </tex-math></inline-formula> elements, even minor UE rotations (e.g., half a degree) can cause significant performance degradation (up to 50dB) due to near-field propagation. This can lead to outage conditions within just 500-700ms. The impact of micromobility on beam misalignment in the far field and propagation specifics in the near field exhibits comparable influence under rotational micromobility, but near-field impact is of higher magnitude when the UE undergoes Cartesian displacements, leading to a 20-30dB degradation over just a few centimeters.
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institution Kabale University
issn 2644-125X
language English
publishDate 2025-01-01
publisher IEEE
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series IEEE Open Journal of the Communications Society
spelling doaj-art-80b9f089527e4cba91471a8bcfc11fe32025-08-25T23:19:02ZengIEEEIEEE Open Journal of the Communications Society2644-125X2025-01-0166463647610.1109/OJCOMS.2025.3595444111117396G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User MicromobilityDmitri Moltchanov0https://orcid.org/0000-0003-4007-7187Olga Chukhno1https://orcid.org/0000-0003-4271-5744Nadezhda Chukhno2https://orcid.org/0000-0002-1466-5367Antonella Molinaro3https://orcid.org/0000-0003-2731-300XUnit of Electrical Engineering, Tampere University, Tampere, FinlandDepartment of Information, Infrastructure and Sustainable Energy Engineering (DIIES), University Mediterranea of Reggio Calabria, Reggio Calabria, ItalyIMDEA Networks Institute, Madrid, SpainDepartment of Information, Infrastructure and Sustainable Energy Engineering (DIIES), University Mediterranea of Reggio Calabria, Reggio Calabria, ItalyThe Terahertz (THz) frequency band (<inline-formula> <tex-math notation="LaTeX">$0.1-3$ </tex-math></inline-formula>THz), which is anticipated to play a crucial role in 6G and future cellular systems, requires the deployment of massive antenna arrays that create highly directional radiation patterns. This, in turn, results in a portion of the cell operating within the near field. In these systems, even small rotations or displacements of User Equipment (UE) in the user&#x2019;s hands &#x2013; referred to as micromobility &#x2013; may cause significant fluctuations in the Signal Received Power (SRP) in the near-field due to propagation specifics and in the far-field due to beam misalignment. Given that both these factors require different mitigation strategies, understanding their relative impacts is essential. This study aims to (i) assess the qualitative effects of beam misalignment and near-field propagation in line-of-sight (LoS) conditions, and (ii) identify which factor is the dominant contributor to SRP degradation in both near and far fields. To achieve this, we propose a unified model that simultaneously captures beam misalignment, as well as near- and far-field propagation dynamics, as influenced by UE micromobility. We then characterize the time-dependent SRP variations. Our findings reveal that the impact of beam misalignment and near-field dynamics is typically of similar magnitude. Specifically, for THz antennas of <inline-formula> <tex-math notation="LaTeX">$128\times {128}$ </tex-math></inline-formula> elements, even minor UE rotations (e.g., half a degree) can cause significant performance degradation (up to 50dB) due to near-field propagation. This can lead to outage conditions within just 500-700ms. The impact of micromobility on beam misalignment in the far field and propagation specifics in the near field exhibits comparable influence under rotational micromobility, but near-field impact is of higher magnitude when the UE undergoes Cartesian displacements, leading to a 20-30dB degradation over just a few centimeters.https://ieeexplore.ieee.org/document/11111739/6Gterahertznear fieldbeamformingmicromobilitybeam misalignment
spellingShingle Dmitri Moltchanov
Olga Chukhno
Nadezhda Chukhno
Antonella Molinaro
6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
IEEE Open Journal of the Communications Society
6G
terahertz
near field
beamforming
micromobility
beam misalignment
title 6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
title_full 6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
title_fullStr 6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
title_full_unstemmed 6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
title_short 6G Communications in the Terahertz Band: The Impact of Near-Field Dynamics Under User Micromobility
title_sort 6g communications in the terahertz band the impact of near field dynamics under user micromobility
topic 6G
terahertz
near field
beamforming
micromobility
beam misalignment
url https://ieeexplore.ieee.org/document/11111739/
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AT nadezhdachukhno 6gcommunicationsintheterahertzbandtheimpactofnearfielddynamicsunderusermicromobility
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