Completed Clean Energy Materials & Manufacturing

Application Targeted and Integrated Photovoltaics - Enhancing UK Capability in Solar

In plain English

AI plain-English summary

Solar panels are about to become far more than rigid blue rectangles bolted onto rooftops. Today’s solar industry relies almost entirely on silicon panels, which have become cheap and efficient but remain heavy, brittle, and opaque. This limits where they can go. A team from Swansea, Imperial College London, and Oxford University is developing the next generation of printed solar cells made from organic and perovskite semiconductors—materials that can be dissolved into inks and coated onto flexible surfaces. These cells could be lightweight enough for drone wings, semi-transparent enough for windows, or tuned to capture specific wavelengths of light for sensors and communications equipment. If the research succeeds, it would open markets that silicon cannot reach: battery-integrated solar for unmanned aerial vehicles, energy-harvesting windows for buildings, and local power for Internet of Things devices. The programme also trains a new generation of UK scientists and engineers with the multidisciplinary skills needed to keep Britain competitive in next-generation renewables. The fundamental scientific challenges remain substantial, but the payoff is a solar technology that adapts to the object rather than forcing the object to adapt to the panel.

View original technical description
Solar photovoltaic (PV) technology is becoming a major source of renewable energy around the globe, with the International Energy Agency predicting it to be the largest contributor to renewables by 2024. This uptake is driven by the building of large PV power plants in regions of high solar resource, and also by the deployment of so-called distributed PV on the roofs of homes and industrial sites. The dominant PV technology to date has been based upon the crystalline semiconductor silicon. The production of silicon PV panels has been commoditised for large-scale manufacturing with costs reducing by a factor of ten in under a decade. Our research addresses the next generation of printed PV technologies which could deliver solar energy with far greater functional and processing flexibility than c-Si or traditional compound semiconductors, enabling tuneable design to meet the requirements of market applications inaccessible to current PV technologies. In particular, we seek to advance photovoltaics based upon organic and perovskite semiconductors - materials which can be processed from solution into the simplest possible solar cell structures, hence reducing cost and embodied energy from the manufacturing. These new technologies are still in the early stages of development with many fundamental scientific and engineering challenges still to be addressed. These challenges will be the foci of our research agenda, as will the development of solar cells for specific applications for which there is currently no optimal technological solution, but which need attributes such as light weight, flexible form factor, tuned spectral response or semi-transparency. These are unique selling points of organic and perovskite solar PV but fall outside the performance (and often cost) windows of the traditional technologies. Our specific target sectors are power for high value communications (for example battery integratable solar cells for unmanned aerial vehicles), and improved energy and resource efficiency power for the built environment (including solar windows and local for 'internet of things' devices). In essence we seek to extend the reach and application of PV beyond the provision of stationary energy. To deliver our ambitious research and technology development agenda we have assembled three world-renowned groups in next generation PV researchers at Swansea University, Imperial College London and Oxford University. All are field leaders and the assembled team spans the fundamental and applied science and engineering needed to answer both the outstanding fundamental questions and reduce the next generation PV technology to practise. Our research programme called Application Targeted Integrated Photovoltaics also involves industrial partners from across the PV supply chain - early manufacturers of the PV technology, component suppliers and large end users who understand the technical and cost requirements to deliver a viable product. The programme is primarily motivated by the clear need to reduce CO2 emissions across our economies and societies and our target sectors are of high priority and potential in this regard. It is also important for the UK to maintain an internationally competitive capability (and profile) in the area of next generation renewables. As part of our agenda we will be ensuring the training of scientists and engineers equipped with the necessary multi-disciplinary skills and closely connected to the emerging industry and its needs to ensure the UK stays pre-eminent in next generation photovoltaics.

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Researchers

Ardalan Armin (Co-Investigator)Henry Snaith (Co-Investigator)James Durrant (Co-Investigator)James Durrant (Principal Investigator)James Ryan (Co-Investigator)Jenny Baker (Co-Investigator)Jenny Nelson (Co-Investigator)Ji-Seon Kim (Co-Investigator)Martin Heeney (Co-Investigator)Matthew John Carnie (Co-Investigator)Paul Meredith (Co-Investigator)Piers Barnes (Co-Investigator)Trystan Watson (Co-Investigator)Wing Chung Tsoi (Co-Investigator)

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Original classification

Research Grant

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