Today’s optical fibres confine light to a solid glass core, which fundamentally limits data speeds, power, and wavelength range. This programme aims to replace that glass core with air or vacuum, creating hollow-core fibres (HCFs) that sidestep those physical constraints. In telecommunications, for instance, nonlinear interactions between signals currently cap single-mode fibre capacity at roughly 100–200 Tbit/s; hollow fibres could break through that ceiling. The same principle applies to high-power lasers used in manufacturing and medicine, where thermal and material damage thresholds now restrict performance, especially for ultrashort pulses. If successful, the technology could reshape infrastructure that most people never see: faster, more resilient data links between cities and data centres; more efficient laser-based manufacturing; cleaner combustion engines; and real-time imaging of cancer tissue during surgery. The programme also targets fundamental science, including attosecond physics and interplanetary exploration, where hollow lightguides could enable measurements impossible with solid fibres. This is not a near-term consumer product—it is a reinvention of how light is guided, with the potential to unlock applications across communications, industry, medicine, and scientific discovery.
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Optical fibres lie at the heart of our increasingly technological society, for example: supporting the internet and mobile communications that we all now take for granted, saving lives through medical diagnosis and interventions using fibre-optic endoscopes, and enabling the mass production of a huge array of commercial products through fibre laser based materials processing. However, current fibre optics technology has its limitations due largely to the fact that the light is confined to a solid glass core. This places fundamental restrictions on the power and wavelength range over which signals can be transmitted, the speed at which signals propagate, and in terms of sensitivity to the external environment. These limits are now starting to impose restrictions in many application areas. For example, in telecommunications, nonlinear interactions between wavelength channels limit the maximum overall data transmission capacity of current single mode fibres to ~100-200 Tbit/s (for amplified terrestrial systems). Moreover, nonlinear, thermal and material damage thresholds combine to limit the maximum peak and average powers that can be delivered in a tightly focusable beam. This restricts the range of potential uses, particularly in the important ultrashort pulse regime increasingly used for a wide variety of materials processing applications These limitations can in principle be overcome by exploiting new light guidance mechanisms in fibres with a hollow core surrounded by a fine glass microstructure. Such fibres are generally referred to as Hollow Core Fibres (HCFs). Within this Programme we will seek to reinvent fibre optics technology and will replace the glass core with air or vacuum to produce Optical Fibres 2.0, offering vastly superior but largely unexplored potential. Our ultimate vision is that of a Connected World, where devices, machines, data centres and cities can be linked through these hollow light pipes for faster, cheaper, more resilient and secure communications. A Greener and Healthier World, where intense laser light can be channelled to produce goods and run combustion engines more efficiently and to image cancer tissues inside our bodies in real time. And an Explorative World, where hollow lightguides will enable scientific breakthroughs in attosecond science, particle physics, metrology and interplanetary exploration. Our overall ambition is therefore to revisit the way we think about light guidance and to develop a disruptive technology that challenges conventional thinking. The programme will provide the UK with a world-leading position both in HCF technology itself and in the many new applications and services that it will support.
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