Pioneering HTS technology for commercial applications
What is HTS?
High-temperature superconducting (HTS) materials, such as REBCO (Rare Earth Barium Copper Oxide), carry electrical current with zero resistance when cooled below their critical temperature.
With around 200 times the engineering current density of copper and operating at significantly higher temperatures than conventional superconductors, HTS enables a new generation of compact, powerful and highly efficient power and magnet systems.
Applications range from power distribution for AI data centres to lightweight, high-field magnet systems for fusion energy, life sciences, propulsion, motors and generators, and advanced manufacturing.

Our services
From early-stage feasibility studies to prototype development and fully integrated systems, we work with partners to design, build and deploy HTS technologies.
Our services include system design, modelling and analysis, HTS magnet and coil engineering, testing and validation, systems integration, and advanced manufacturing through our Ridgway Machines subsidiary.
We support every stage of development, from concept evaluation and engineering design through to manufacturing, commissioning and operational support.
Our capabilities include:
- Advanced design, modelling and simulation,
including bespoke 3D quench modelling - Systems integration, including power, cryogenics and cryogenic-to-room-temperature interfaces
- Prototyping, testing and validation
- Manufacturing and production scale-up
- Instrumentation and controls
- Project management


Our HTS technology
Originally developed for fusion energy, our HTS technology is built on more than a decade of innovation in superconducting systems.
Our expertise spans the entire system, from HTS tape characterisation and coil design to cryogenics, cryogenic-to-room-temperature interfaces, power systems, controls and integration. This enables us to optimise how every part of the system works together, delivering complete HTS-based magnet and power systems for commercial applications.
Supported by more than 200 patents, our technologies include innovations such as ultra-compact insulation and advanced system designs that enable highly compact, high-performance systems while reducing size, weight and complexity.

Demo4
Demonstrating HTS technology at scale
Demo4 is a world-first fusion magnet system and a major milestone in the development of HTS technology. It showcases our capabilities across design, manufacturing, integration and operation, supported by a dedicated facility for testing and operating advanced HTS systems.
Comprising 44 HTS coils arranged in a tokamak configuration, Demo4 achieved 11.8 tesla at 30 Kelvin in 2025, delivering 7 million amps through the centre column. A successful quench test at 77 Kelvin validated our patented quench-safe technology.
The programme has helped develop the technologies, manufacturing methods and operational expertise needed to scale HTS systems for fusion, power distribution and wider industrial applications.

HTS Applications
Power distribution
HTS enables scalable, ultra-efficient and compact power distribution for high-demand environments such as AI data centres. Compared with conventional systems, HTS can reduce power losses by up to 90% and total cost of ownership by up to 50% over a 15-year operating life.
Fusion energy
HTS magnets generate the powerful magnetic fields needed to confine plasma in fusion devices such as tokamaks and stellarators. Compared with conventional low-temperature superconductors, HTS enables stronger magnetic fields and more energy-efficient operation, supporting a viable pathway to commercial fusion energy.
Science and medicine
HTS magnet technology enables a new generation of compact, lightweight and cost-effective ultra-high-field magnetic systems for life sciences, medicine and scientific research. Applications include magnetic resonance imaging, drug discovery, particle therapy, materials analysis and particle accelerators.
Motors and generators
HTS magnets enable powerful, compact and ultra-efficient electric motors and generators, unlocking applications such as electric flight, advanced maritime systems and high-efficiency renewable energy generation.
Propulsion
HTS magnet technology enables powerful and efficient magnetic propulsion systems for land, air, sea and space, including next-generation magnetic levitation and magnetohydrodynamic drive systems.
Manufacturing
HTS magnet systems have the potential to improve efficiency, yield and performance across advanced manufacturing, including mineral separation, semiconductor production and heavy industry.



























