Completed Physics & Astronomy Computing & AI

Terabit Bidirectional Multi-user Optical Wireless System (TOWS) for 6G LiFi

In plain English

AI plain-English summary

A steerable laser diode array will beam infrared data to multiple users in the same room, each receiving their own connection without interference. Today’s radio-frequency spectrum is too congested to keep up with demand from high-definition video, augmented reality, and virtual reality. Light-based wireless communications—using the infrared and visible spectrum—opens vast new bandwidth that is far larger than the radio spectrum, using simple sources and detectors that avoid the complexity of terahertz systems. Because infrared light stays inside the room where it originates, it also provides built-in physical security and allows the same wavelengths to be reused in adjacent spaces, radically increasing overall capacity. If successful, this project could deliver wireless data rates far beyond what current 5G systems can offer, enabling seamless, multi-user connections for data-intensive services without the glare and dimming problems of visible-light LiFi. The work combines steerable laser arrays, advanced coding, and hybrid optical-radio handover to create a practical pathway toward future 6G networks.

View original technical description
Given the unprecedented demand for mobile capacity beyond that available from the RF spectrum, it is natural to consider the infrared and visible light spectrum for future terrestrial wireless systems. Wireless systems using these parts of the electromagnetic spectrum could be classified as nmWave wireless communications system in relation to mmWave radio systems and both are being standardised in current 5G systems. TOWS, therefore, will provide a technically logical pathway to ensure that wireless systems are future-proof and that they can deliver the capacities that future data intensive services such as high definition (HD) video streaming, augmented reality, virtual reality and mixed reality will demand. Light based wireless communication systems will not be in competition with RF communications, but instead these systems follow a trend that has been witnessed in cellular communications over the last 30 years. Light based wireless communications simply adds new capacity - the available spectrum is 2600 times the RF spectrum. 6G and beyond promise increased wireless capacity to accommodate this growth in traffic in an increasingly congested spectrum, however action is required now to ensure UK leadership of the fast moving 6G field. Optical wireless (OW) opens new spectral bands with a bandwidth exceeding 540 THz using simple sources and detectors and can be simpler than cellular and WiFi with a significantly larger spectrum. It is the best choice of spectrum beyond millimetre waves, where unlike the THz spectrum (the other possible choice), OW avoids complex sources and detectors and has good indoor channel conditions. Optical signals, when used indoors, are confined to the environment in which they originate, which offers added security at the physical layer and the ability to re-use wavelengths in adjacent rooms, thus radically increasing capacity. Our vision is to develop and experimentally demonstrate multiuser Terabit/s optical wireless systems that offer capacities at least two orders of magnitude higher than the current planned 5G optical and radio wireless systems, with a roadmap to wireless systems that can offer up to four orders of magnitude higher capacity. There are four features of the proposed system which make possible such unprecedented capacities to enable this disruptive advance. Firstly, unlike visible light communications (VLC), we will exploit the infrared spectrum, this providing a solution to the light dimming problem associated with VLC, eliminating uplink VLC glare and thus supporting bidirectional communications. Secondly, to make possible much greater transmission capacities and multi-user, multi-cell operation, we will introduce a new type of LED-like steerable laser diode array, which does not suffer from the speckle impairments of conventional laser diodes while ensuring ultrahigh speed performance. Thirdly, with the added capacity, we will develop native OW multi-user systems to share the resources, these being adaptively directional to allow full coverage with reduced user and inter-cell interference and finally incorporate RF systems to allow seamless transition and facilitate overall network control, in essence to introduce software defined radio to optical wireless. This means that OW multi-user systems can readily be designed to allow very high aggregate capacities as beams can be controlled in a compact manner. We will develop advanced inter-cell coding and handover for our optical multi-user systems, this also allowing seamless handover with radio systems when required such as for resilience. We believe that this work, though challenging, is feasible as it will leverage existing skills and research within the consortium, which includes excellence in OW link design, advanced coding and modulation, optimised algorithms for front-haul and back-haul networking, expertise in surface emitting laser design and single photon avalanche detectors for ultra-sensitive detection.

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Researchers

Bashir Al-Hashimi (Principal Investigator)Harald Haas (Co-Investigator)Ian Hugh White (Co-Investigator)Jaafar Elmirghani (Principal Investigator)Majid Safari (Co-Investigator)Richard Penty (Co-Investigator)Taisir El-Gorashi (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Terabit optical wireless systems
Wireless Optical/Radio TErabit Communications
Extremely Wideband Optical Fibre Communication Systems
Traveling Wave Tube based W-band Wireless Networks with High Data Rate, Distribution, Spectrum and Energy Efficiency
Towards 100 Gigabit Wireless Networking by Light (Go-by-Light) (Ext.)

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Research Grant

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