
ICE Oxford Limited
ICE Oxford Limited
2 Projects, page 1 of 1
assignment_turned_in Project2024 - 2032Partners:Conectus, Clevedon School, Razorbill Instruments, ISIS Neutron and Muon Source, CERN +20 partnersConectus,Clevedon School,Razorbill Instruments,ISIS Neutron and Muon Source,CERN,Hochfeld-Magnetlabor Dresden,Karlsruhe Institute of Technology (KIT),Diamond Light Source,ICE Oxford Limited,Henry Royce Institute,TOKAMAK ENERGY LTD,National High Magnetic Field Laboratory,HFML-FELIX,LNCMI,European Magnetic Field Laboratory,CCFE/UKAEA,University of Bristol,Can Superconductors (Czechia),Cryogenic Ltd,Oxford Magnet Technology Ltd,Cast,Veir,Oxford Instruments (United Kingdom),Oxford Quantum Solutions,National Grid Electricity TransmissionFunder: UK Research and Innovation Project Code: EP/Y035453/1Funder Contribution: 6,018,760 GBPThe aim of this Centre for Doctoral Training (CDT) is to equip students with essential interdisciplinary skills needed by industry and to deliver cutting edge research in the area of superconductivity. The unique properties of superconducting materials mean that they can deliver revolutionary technologies which will help to decarbonize our energy production and improve healthcare. Superconductors are also an essential component in many quantum devices such as those used for quantum computing. The promise of limitless carbon free power promised by magnetically confined plasma nuclear fusion reactors can only be realised using superconducting magnets. Other major applications under development, which also will contribute to reducing carbon emissions include superconducting cables for electrical power transmission, light and powerful motors and generators for electric and hybrid power aircraft, superconducting magnetically levitating trains and high efficiency generators for wind-power generators. Development, manufacture, and deployment of these technologies needs people with the skills our CDT will deliver. Superconductors are also an essential component in magnetic resonance imaging (MRI) machines used for medical diagnosis and this forms the majority of the current £7 billion per annum market in superconductors that is projected to double by 2030. Development of improved superconducting materials will transform MRI both in terms of reducing cost and thereby availability and enabling higher magnetic field strengths that increase resolution and enhanced diagnostic capabilities. We will capitalize on the UK's established leadership in superconductivity through the development of a CDT with cohort-based training that will engender teamwork and an interdisciplinary approach in close collaboration with industry and international research facility partners. This is crucial to drive the development of these groundbreaking superconducting technologies and to empower our graduates with the combination of technical and personal skills sought after by industry. The CDT brings together graduate superconductivity training in the Universities of Bristol, Oxford and Cambridge across their Physics, Material Science, Engineering and Chemistry departments. The CDT is created in partnership with 26 industrial companies, international research institutions and other educational institutions. Our training programme includes lecture-based learning, extensive practical training in relevant techniques and experimental methods as well as real-world experience at implementing the knowledge gained within projects based at one of our partners. The CDT will form a nucleus for the UK superconductivity community offering training and networking opportunities to those outside of the CDT.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2019 - 2028Partners:Hewlett-Packard (United States), Quantum Communications Hub (QComm), ID Quantique (Switzerland), Xanadu, Airbus Defence and Space +92 partnersHewlett-Packard (United States),Quantum Communications Hub (QComm),ID Quantique (Switzerland),Xanadu,Airbus Defence and Space,Ultrahaptics Ltd,University of Copenhagen,Networked Quantum Information Technology,Oxford Instruments (United Kingdom),QxBranch,M Squared Lasers (United Kingdom),Google (United States),Keysight Technologies (United Kingdom),Quantum Technology Hub,National Physical Laboratory,Nabla Ventures,ARC Centre of Excellence for Engineered Quantum Systems,M Squared Lasers (United Kingdom),Fluoretiq,Defence Science & Tech Lab DSTL,Toshiba (United Kingdom),QxBranch,Ultrahaptics (United Kingdom),Hitachi Cambridge Laboratory,KETS Quantum Security Ltd,1QBit,1QBit,University of Sussex,RayCal,BTEXACT,University of Sussex,Sandia National Laboratories,University of Cambridge,Microsoft Research,PsiQuantum Corp.,Quantum Communications Hub (QComm),ICE Oxford Limited,Stanford University,Google Inc,Quantum Technology Hub,PhaseCraft Ltd,University of Waterloo,QLM Technology Ltd,Rigetti & Co Inc,Keysight Technologies UK Ltd,ICE Oxford Limited,RedWave Labs,TREL,BT Group (United Kingdom),University of Waterloo (Canada),ID Quantique,University of Bristol,Helibronn Institute,Sandia National Laboratories California,Defence Science and Technology Laboratory,Xanadu,University of Copenhagen,Fraunhofer UK Research Ltd,Rigetti & Co Inc,Fraunhofer UK Research Ltd,Defence Science & Tech Lab DSTL,EQUS,Chronos Technology Limited,Quandela SAS,Imperial College London,Quantum Benchmark,Nabla Ventures,Hewlett-Packard Company Inc,Networked Quantum Information Technology,QuantIC,Quantum Benchmark,Quandela SAS,QLM Technology Ltd.,Oxford Instruments (United Kingdom),SU,RayCal,Airbus Defence and Space,Thales Group,NPL,QuantIC,Microsoft (United States),RedWave Labs,Kets-Quantum Security limited,BTEXACT,Helibronn Institute,Fluoretiq,Airbus (United Kingdom),Chronos Technology (United Kingdom),Hitachi Cambridge Laboratory,PsiQuantum Corp.,Stanford University,University of Bristol,Thales Group (UK),Riverlane,River Lane Research,PhaseCraft Ltd.,Thales (United Kingdom)Funder: UK Research and Innovation Project Code: EP/S023607/1Funder Contribution: 6,242,250 GBPQuantum Technologies (QT) are at a pivotal moment with major global efforts underway to translate quantum information science into new products that promise disruptive impact across a wide variety of sectors from communications, imaging, sensing, metrology, simulation, to computation and security. Our world-leading Centre for Doctoral Training in Quantum Engineering will evolve to be a vital component of a thriving quantum UK ecosystem, training not just highly-skilled employees, but the CEOs and CTOs of the future QT companies that will define the field. Due to the excellence of its basic science, and through investment by the national QT programme, the UK has positioned itself at the forefront of global developments. There have been very recent major [billion-dollar] investments world-wide, notably in the US, China and Europe, both from government and leading technology companies. There has also been an explosion in the number of start-up companies in the area, both in the UK and internationally. Thus, competition in this field has increased dramatically. PhD trained experts are being recruited aggressively, by both large and small firms, signalling a rapidly growing need. The supply of globally competitive talent is perhaps the biggest challenge for the UK in maintaining its leading position in QT. The new CDT will address this challenge by providing a vital source of highly-trained scientists, engineers and innovators, thus making it possible to anchor an outstanding QT sector here, and therefore ensure that UK QT delivers long-term economic and societal benefits. Recognizing the nature of the skills need is vital: QT opportunities will be at the doctoral or postdoctoral level, largely in start-ups or small interdisciplinary teams in larger organizations. With our partners we have identified the key skills our graduates need, in addition to core technical skills: interdisciplinary teamwork, leadership in large and small groups, collaborative research, an entrepreneurial mind-set, agility of thought across diverse disciplines, and management of complex projects, including systems engineering. These factors show that a new type of graduate training is needed, far from the standard PhD model. A cohort-based approach is essential. In addition to lectures, there will be seminars, labs, research and peer-to-peer learning. There will be interdisciplinary and grand challenge team projects, co-created and co-delivered with industry partners, developing a variety of important team skills. Innovation, leadership and entrepreneurship activities will be embedded from day one. At all times, our programme will maximize the benefits of a cohort-based approach. In the past two years particularly, the QT landscape has transformed, and our proposed programme, with inputs from our partners, has been designed to reflect this. Our training and research programme has evolved and broadened from our highly successful current CDT to include the challenging interplay of noisy quantum hardware and new quantum software, applied to all three QT priorities: communications; computing & simulation; and sensing, imaging & metrology. Our programme will be founded on Bristol's outstanding activity in quantum information, computation and photonics, together with world-class expertise in science and engineering in areas surrounding this core. In addition, our programme will benefit from close links to Bristol's unique local innovation environment including the visionary Quantum Technology Enterprise Centre, a fellowship programme and Skills Hub run in partnership with Cranfield University's Bettany Centre in the School of Management, as well as internationally recognised incubators/accelerators SetSquared, EngineShed, UnitDX and the recently announced £43m Quantum Technology Innovation Centre. This will all be linked within Bristol's planned £300m Temple Quarter Enterprise Campus, placing the CDT at the centre of a thriving quantum ecosystem.
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