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Hyperuniform Disordered Metasurfaces for Selective Absorbers

Reference Number
EP/Y016440/2
Title
Hyperuniform Disordered Metasurfaces for Selective Absorbers
Status
Started
Energy Categories
Renewable Energy Sources(Solar Energy, Photovoltaics)
Research Types
Basic and strategic applied research
Science and Technology Fields
PHYSICAL SCIENCES AND MATHEMATICS (Metallurgy and Materials)
UKERC Cross Cutting Characterisation
Not Cross-cutting
Principal Investigator
Dr M Florescu
Physics
University of Surrey
Award Type
Standard
Funding Source
EPSRC
Start Date
10 December 2024
End Date
01 September 2027
Duration
33 months
Total Grant Value
£1,055,171
Industrial Sectors
Materials sciences
Region
South East
Programme
NC : Physical Sciences
Investigators
Principal Investigator
Dr M Florescu, Physics, University of Surrey
Other Investigator
Professor MJ Cryan, Electrical and Electronic Engineering, University of Bristol
Dr N Fox, Physics, University of Bristol
Dr YD Ho, Electrical and Electronic Engineering, University of Bristol
Dr J Pugh, Electrical and Electronic Engineering, University of Bristol
Industrial Collaborator
Project Contact, Imperial College London
Project Contact, AES Solar
Project Contact, Arkenlight Limited
Project Contact, JX Crystals
Project Contact, Humboldt-Universität zu Berlin, Germany
Project Contact, University of Washington
Project Contact, University Centre Somerset
Project Contact, Etaphase Inc, USA
Web Site
Objectives
Abstract
In this proposal we aim to develop photonic materials in which novel types of structuring are exploited as a resource to control light absorption and thermal emission. This will deliver future generations of solar-thermal absorbers, with ultra-high optical absorption, low-thermal losses and high-temperature stability. World demand for energy is projected to more than double by the end of the century and identifying adequate supplies of non-polluting energy is set to become one of humanity's top priorities. Solar energy provides a persuasive approach to the challenge of identifying clean, abundant sources which are readily available energy for the future, however, still, the cumulative solar photovoltaic capacity is currently only a small fraction the global power output. Recent advances in theoretical, computational, and nano-fabrication capabilities have allowed unprecedented manipulation of the nanoscale structures controlling solar capture, conversion, and storage. we are no longer restricted to well-defined periodic structures. Instead, we plan to exploit complex systems made of apparently random patterns, which when suitably designed, can lead to performances superior to those offered by conventional photonic systems. The proposed project will focus on the development of hyperuniform disordered metasurfaces, a novel class of photonic structures in which structural correlations are accurately controlled. Discovered in 2009, these new materials have already attracted considerable attention as they combine the robust properties of periodic systems with the flexibility of disordered ones. We will explore the properties of hyperuniform media with the aim of achieving ultimate control over the absorption of solar radiation and emission of thermal radiation, with the goal to create highly efficient frequency-selective solar-thermal absorbing materials. This research proposed will enhance UK's capabilities in disordered photonic materials and high temperature solar absorbers and will have direct impact on more efficient and cost-effective solar power generation. The advanced optical capabilities to be enabled by our research will support the constant exponential growth of novel photonic technologies in the UK.
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Added to Database
25/06/25