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High-efficiency Hybrid Solar Cells for Micro-generation

Reference Number
EP/E036287/1
Title
High-efficiency Hybrid Solar Cells for Micro-generation
Status
Completed
Energy Categories
Renewable Energy Sources(Solar Energy, Photovoltaics)
Research Types
Basic and strategic applied research
Science and Technology Fields
PHYSICAL SCIENCES AND MATHEMATICS (Chemistry)
PHYSICAL SCIENCES AND MATHEMATICS (Physics)
PHYSICAL SCIENCES AND MATHEMATICS (Metallurgy and Materials)
ENGINEERING AND TECHNOLOGY (Electrical and Electronic Engineering)
UKERC Cross Cutting Characterisation
Not Cross-cutting
Principal Investigator
Professor P O'Brien
Chemistry
University of Manchester
Award Type
Standard
Funding Source
EPSRC
Start Date
01 May 2007
End Date
30 April 2011
Duration
48 months
Total Grant Value
£1,012,365
Industrial Sectors
Materials sciences
Region
North West
Programme
Photonic Materials -- Physical Sciences
Investigators
Principal Investigator
Professor P O'Brien, Chemistry, University of Manchester
Other Investigator
Dr DJ Binks, Physics and Astronomy, University of Manchester
Professor WR Flavell, Physics and Astronomy, University of Manchester
Dr J Mutale, Electrical & Electronic Engineering, University of Manchester
Dr B Saunders, Materials, University of Manchester
Professor ML Turner, Chemistry, University of Manchester
Web Site
Objectives
Abstract
Widespread implementation of photovoltaic electricity to meet changing energy demands requires a step-change in the cost of photovoltaic power. This proposal assembles a consortium of chemists, physicists, materials scientists and electrical engineers from The University of Manchester and Imperial College London to address this need through the development of new low-cost, high-efficiency, demonstration solar cells for micro-generation.We propose new designs for hybrid organic/inorganic devices which integrate flexibility and stability with inexpensive materials and solution based processing. In one design, semiconductor quantum dots (QDs) are used as the light absorber at the interface between a high mobility organic hole transporter and an array of directed metal oxide nano-rods, which act as the electron transporter. Independent optimisation of the optical and electronic properties will lead to design rules for maximising power conversion efficiency. In a second design, hybridpolymer/QD blend solar cells with novel metal oxide electrodes will be optimised. This proposal combines new approaches for ultra high efficiency with ultra low cost in the same device concept for the first time. Our aim is to construct affordable demonstration hybrid solar cells that could be mass-produced with long-term potential to achieve energy conversion efficiency of 10%
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Added to Database
22/02/07