Copper light-catching electrodes for organic photovoltaics

Pereira, H. Jessica, Hutter, Oliver, Dabera, G. Dinesha M. R., Rochford, Luke A. and Hatton, Ross. A. (2017) Copper light-catching electrodes for organic photovoltaics. Sustainable Energy & Fuels, 1 (4). pp. 859-865. ISSN 2398-4902

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Official URL: https://doi.org/10.1039/C7SE00077D

Abstract

Optically thin copper films with a random array of sub-optical wavelength apertures couple strongly with light in the wavelength range 600–800 nm due to excitation of surface plasmonic resonances. Herein we show that this trapped light can be used to excite electronic transitions in a nearby strongly absorbing organic semiconductor before the plasmonic excitations dissipate their energy as heat into the metal. This energy transfer process is demonstrated using model small molecule and polymer photovoltaic devices (based on chloro-aluminium phthalocyanine:C60 and PCE-10:PC70BM heterojunctions respectively) in conjunction with a nano-hole copper electrode formed by thermal annealing an optically thin Cu film supported on polyethylene terephthalate. The efficiency of this process is shown to be highest for wavelengths in the range 650–750 nm, which is part of the solar spectrum that is weakly absorbed by today's high performance organic photovoltaic devices, and so these findings demonstrate that this type of electrode could prove useful as a low cost light catching element in high performance organic photovoltaics.

Item Type: Article
Subjects: F300 Physics
G100 Mathematics
G900 Others in Mathematical and Computing Sciences
H600 Electronic and Electrical Engineering
Department: Faculties > Engineering and Environment > Mathematics, Physics and Electrical Engineering
Depositing User: Rachel Branson
Date Deposited: 09 Mar 2020 12:25
Last Modified: 09 Mar 2020 12:30
URI: http://nrl.northumbria.ac.uk/id/eprint/42417

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