Free Space Optical Communication: An Enabling Backhaul Technology for 6G Non-Terrestrial Networks

被引:13
|
作者
Elamassie, Mohammed [1 ]
Uysal, Murat [2 ,3 ]
机构
[1] Ozyegin Univ, Dept Elect & Elect Engn, TR-34794 Istanbul, Turkiye
[2] New York Univ Abu Dhabi NYUAD, Engn Div, POB 129188, Abu Dhabi, U Arab Emirates
[3] Ozyegin Univ, Ctr Excellence Opt Wireless Commun Technol, TR-34794 Istanbul, Turkiye
关键词
non-terrestrial networks (NTNs); high-altitude platform stations (HAPS); free space optical (FSO) communication; airborne backhaul system architectures; self-sustainability in backhaul networks; INTELLIGENT REFLECTING SURFACE; ORBITAL-ANGULAR-MOMENTUM; ATMOSPHERIC-TURBULENCE; TRAJECTORY DESIGN; THROUGHPUT MAXIMIZATION; PERFORMANCE ANALYSIS; SECURE TRANSMISSION; ADAPTIVE-OPTICS; POWER TRANSFER; IOT NETWORKS;
D O I
10.3390/photonics10111210
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The deployment of non-terrestrial networks (NTNs) is envisioned to achieve global coverage for 6G and beyond. In addition to space nodes, aerial NTN nodes such as high-altitude platform stations (HAPSs) and rotary-wing unmanned aerial vehicles (UAVs) could be deployed, based on the intended coverage and operational altitude requirements. NTN nodes have the potential to support both wireless access and backhauling. While the onboard base station provides wireless access for the end users, the backhauling link connects the airborne/space-borne base station to the core network. With its high data transmission capability comparable to fiber optics and its ability to operate in the interference-free optical spectrum, free space optical (FSO) communication is ideally suited to backhauling requirements in NTNs. In this paper, we present a comprehensive tutorial on airborne FSO backhauling. We first delve into the fundamentals of FSO signal transmission and discuss aspects such as geometrical loss, atmospheric attenuation, turbulence-induced fading, and pointing errors, all of which are critical for determining received signal levels and related link budget calculations. Then, we discuss the requirements of airborne backhaul system architectures, based on use cases. While single-layer backhaul systems are sufficient for providing coverage in rural areas, multi-layer designs are typically required to establish connectivity in urban areas, where line of sight (LoS) links are harder to maintain. We review physical layer design principles for FSO-based airborne links, discussing both intensity modulation/direct detection (IM/DD) and coherent modulation/coherent demodulation (CM/CD). Another critical design criteria for airborne backhauling is self-sustainability, which is further discussed in our paper. We conclude the paper by discussing current challenges and future research directions. In this context, we discuss reconfigurable intelligent surfaces (RIS) and spatial division multiplexing (SDM), for improved performance and an extended transmission range. We emphasize the importance of advanced handover techniques and scalability issues for practical implementation. We also highlight the growing role of artificial intelligence/machine learning (AI/ML) and their potential applications in the design and optimization of future FSO-based NTNs.
引用
收藏
页数:45
相关论文
共 50 条
  • [41] Non-Terrestrial Networks for Energy-Efficient Connectivity of Remote IoT Devices in the 6G Era: A Survey
    Plastras, Stefanos
    Tsoumatidis, Dimitrios
    Skoutas, Dimitrios N.
    Rouskas, Angelos
    Kormentzas, Georgios
    Skianis, Charalabos
    SENSORS, 2024, 24 (04)
  • [42] FREE SPACE OPTICAL COMMUNICATION SYSTEMS FOR 6G: A MODULAR TRANSCEIVER DESIGN
    Bekkali, Abdelmoula
    Hattori, Michikazu
    Hara, Yuichiro
    Suga, Yukihiko
    IEEE WIRELESS COMMUNICATIONS, 2023, 30 (05) : 50 - 57
  • [43] IoTAuth: A Decentralized Cross-Chain Identity Authentication Scheme for 6G Non-Terrestrial IoT Networks
    Deng, Haotian
    Zhang, Chuan
    Zhang, Weiting
    Liang, Jinwen
    Wang, Licheng
    Zhu, Liehuang
    IEEE NETWORK, 2024, 38 (04): : 55 - 62
  • [44] AI-Aided Integrated Terrestrial and Non-Terrestrial 6G Solutions for Sustainable Maritime Networking
    Saafi, Salwa
    Vikhrova, Olga
    Fodor, Gabor
    Hosek, Jiri
    Andreev, Sergey
    IEEE NETWORK, 2022, 36 (03): : 183 - 190
  • [45] Optical Wireless Communication: A Candidate 6G Technology?
    Arai, Shintaro
    Kinoshita, Masayuki
    Yamazato, Takaya
    IEICE TRANSACTIONS ON FUNDAMENTALS OF ELECTRONICS COMMUNICATIONS AND COMPUTER SCIENCES, 2021, E104A (01) : 227 - 234
  • [46] ETHER: Energy- and Cost-Efficient Framework for Seamless Connectivity over the Integrated Terrestrial and Non-terrestrial 6G Networks
    Tomaszewski, Lechoslaw
    Kolakowski, Robert
    Mesodiakaki, Agapi
    Ntontin, Konstantinos
    Antonopoulos, Angelos
    Pappas, Nikolaos
    Fiore, Marco
    Mosahebfard, Mohammadreza
    Watts, Simon
    Harris, Philip
    Lin, Chih-Kuang
    Santiago, Ana Rita
    Lazarakis, Fotis
    Chatzinotas, Symeon
    ARTIFICIAL INTELLIGENCE APPLICATIONS AND INNOVATIONS. AIAI 2023 IFIP WG 12.5 INTERNATIONAL WORKSHOPS, 2023, 677 : 32 - 44
  • [47] Recent Advances and Future Perspectives in Optical Wireless Communication, Free Space Optical Communication and Sensing for 6G
    Chow, Chi-Wai
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2024, 42 (11) : 3972 - 3980
  • [48] 6G Non-Terrestrial Networks-Enhanced IoT Service Coverage: Injecting New Vitality Into Ecological Surveillance
    Zhou, Di
    Sheng, Min
    Bao, Chenxi
    Hao, Qi
    Ji, Sijing
    Li, Jiandong
    IEEE NETWORK, 2024, 38 (04): : 63 - 71
  • [49] Resilient Disaster Relief in Industrial IoT: UAV Trajectory Design and Resource Allocation in 6G Non-Terrestrial Networks
    Mohammadisarab, Amir
    Nouruzi, Ali
    Khalili, Ata
    Mokari, Nader
    Arand, Bijan Abbasi
    Jorswieck, Eduard A.
    IEEE OPEN JOURNAL OF THE COMMUNICATIONS SOCIETY, 2024, 5 : 1827 - 1845
  • [50] 5G-NR Physical Layer-Based Solutions to Support High Mobility in 6G Non-Terrestrial Networks
    Pawase, Chaitali J. J.
    Chang, KyungHi
    DRONES, 2023, 7 (03)