Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study

This paper introduces a novel Line-of-Sight (LoS) Multiple-Input Multiple-Output (MIMO) communication architecture leveraging non-traditional Orbital Angular Momentum (OAM) beams. Challenging the conventional paradigm of hollow-emitting OAM beams, this study presents an innovative OAM generator that...

Full description

Saved in:
Bibliographic Details
Main Authors: Zhao, Yufei, Ma, Xiaoyan, Guan, Yong Liang, Liu, Yile, Ismail, Afkar Mohamed, Liu, Xiaobei, Yeo, Siew Yam, Yuen, Chau
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2024
Subjects:
Online Access:https://hdl.handle.net/10356/181041
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-181041
record_format dspace
spelling sg-ntu-dr.10356-1810412024-11-12T04:30:14Z Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study Zhao, Yufei Ma, Xiaoyan Guan, Yong Liang Liu, Yile Ismail, Afkar Mohamed Liu, Xiaobei Yeo, Siew Yam Yuen, Chau School of Electrical and Electronic Engineering Temasek Laboratories @ NTU Engineering Channel capacity Orbital angular momentum This paper introduces a novel Line-of-Sight (LoS) Multiple-Input Multiple-Output (MIMO) communication architecture leveraging non-traditional Orbital Angular Momentum (OAM) beams. Challenging the conventional paradigm of hollow-emitting OAM beams, this study presents an innovative OAM generator that produces directional OAM beams without central energy voids, aligning their radiation patterns with those of conventional planar wave horn antennas. Within the main lobe of radiation patterns, the phase variation characteristics inherent to OAM beams are ingeniously maintained, linking different OAM modes to the linear wavefront variation gradients, thereby reducing channel correlation in LoS scenarios and significantly augmenting the channel capacity of LoS-MIMO frameworks. Empirical validations conducted through a meticulously designed LoS-MIMO experimental platform reveal significant improvements in channel correlation coefficients, communication stability, and Bit Error Rate (BER) compared to systems utilizing traditional planar wave antennas. The experiment results underscore the potential of the novel OAM-based system to improve current LoS-MIMO communication protocols, and offer both academic and engineering guidance for the construction of practical communication infrastructures. Beyond its immediate contributions, this paper underscores a pivotal shift in the field of communications, pointing out that traditional communication algorithms have primarily focused on baseband signal processing while often overlooking the electromagnetic characteristics of the physical world. This research highlights that, in addition to radiation patterns, the wavefront phase variations of traditional antennas represent a new degree-of-freedom that can be exploited. Consequently, future communication algorithms designed around reconfigurable electromagnetic wavefront properties hold the promise of ushering wireless communications into a new era. Info-communications Media Development Authority (IMDA) Nanyang Technological University National Research Foundation (NRF) This work was supported by the National Research Foundation, Singapore and Infocomm Media Development Authority under its Future Communications Research & Development Programme, Grant No. FCP-NTU-RG-2022-011, and No. FCP-NTU-RG-2022-020. It was also supported by Temasek Laboratories @ NTU seed research projects, No. TLSP23-13 and No. TLSP24- 05. 2024-11-12T04:30:14Z 2024-11-12T04:30:14Z 2024 Journal Article Zhao, Y., Ma, X., Guan, Y. L., Liu, Y., Ismail, A. M., Liu, X., Yeo, S. Y. & Yuen, C. (2024). Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study. IEEE Internet of Things Journal, 3449975-. https://dx.doi.org/10.1109/JIOT.2024.3449975 2327-4662 https://hdl.handle.net/10356/181041 10.1109/JIOT.2024.3449975 2-s2.0-85203464971 3449975 en FCP-NTU-RG-2022-011 FCP-NTU-RG-2022-020 TLSP23-13 TLSP24- 05 IEEE Internet of Things Journal © 2024 IEEE. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Channel capacity
Orbital angular momentum
spellingShingle Engineering
Channel capacity
Orbital angular momentum
Zhao, Yufei
Ma, Xiaoyan
Guan, Yong Liang
Liu, Yile
Ismail, Afkar Mohamed
Liu, Xiaobei
Yeo, Siew Yam
Yuen, Chau
Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
description This paper introduces a novel Line-of-Sight (LoS) Multiple-Input Multiple-Output (MIMO) communication architecture leveraging non-traditional Orbital Angular Momentum (OAM) beams. Challenging the conventional paradigm of hollow-emitting OAM beams, this study presents an innovative OAM generator that produces directional OAM beams without central energy voids, aligning their radiation patterns with those of conventional planar wave horn antennas. Within the main lobe of radiation patterns, the phase variation characteristics inherent to OAM beams are ingeniously maintained, linking different OAM modes to the linear wavefront variation gradients, thereby reducing channel correlation in LoS scenarios and significantly augmenting the channel capacity of LoS-MIMO frameworks. Empirical validations conducted through a meticulously designed LoS-MIMO experimental platform reveal significant improvements in channel correlation coefficients, communication stability, and Bit Error Rate (BER) compared to systems utilizing traditional planar wave antennas. The experiment results underscore the potential of the novel OAM-based system to improve current LoS-MIMO communication protocols, and offer both academic and engineering guidance for the construction of practical communication infrastructures. Beyond its immediate contributions, this paper underscores a pivotal shift in the field of communications, pointing out that traditional communication algorithms have primarily focused on baseband signal processing while often overlooking the electromagnetic characteristics of the physical world. This research highlights that, in addition to radiation patterns, the wavefront phase variations of traditional antennas represent a new degree-of-freedom that can be exploited. Consequently, future communication algorithms designed around reconfigurable electromagnetic wavefront properties hold the promise of ushering wireless communications into a new era.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Zhao, Yufei
Ma, Xiaoyan
Guan, Yong Liang
Liu, Yile
Ismail, Afkar Mohamed
Liu, Xiaobei
Yeo, Siew Yam
Yuen, Chau
format Article
author Zhao, Yufei
Ma, Xiaoyan
Guan, Yong Liang
Liu, Yile
Ismail, Afkar Mohamed
Liu, Xiaobei
Yeo, Siew Yam
Yuen, Chau
author_sort Zhao, Yufei
title Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
title_short Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
title_full Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
title_fullStr Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
title_full_unstemmed Near-orthogonal overlay communications in LoS channel enabled by novel OAM beams without central energy voids: an experimental study
title_sort near-orthogonal overlay communications in los channel enabled by novel oam beams without central energy voids: an experimental study
publishDate 2024
url https://hdl.handle.net/10356/181041
_version_ 1816859015782596608