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Adjusting the energy of interfacial states in organic photovoltaics for maximum efficiency

Authors :
Michael Salvador
Franco V. A. Camargo
Vasilis G. Gregoriou
Christos L. Chochos
Steffen Roland
Andrej Classen
Giulio Cerullo
Larry Lüer
Nicola Gasparini
Iain McCulloch
Andrew Wadsworth
Christoph J. Brabec
Derya Baran
Tetsuhiko Nagahara
Dieter Neher
Andreas Görling
Stefan Frühwald
Source :
Nature Communications, Nature Communications, Vol 12, Iss 1, Pp 1-8 (2021), Nature Communications 12(1), 1772 (2021). doi:10.1038/s41467-021-22032-3
Publication Year :
2021
Publisher :
Nature Publishing Group UK, 2021.

Abstract

A critical bottleneck for improving the performance of organic solar cells (OSC) is minimising non-radiative losses in the interfacial charge-transfer (CT) state via the formation of hybrid energetic states. This requires small energetic offsets often detrimental for high external quantum efficiency (EQE). Here, we obtain OSC with both non-radiative voltage losses (0.24 V) and photocurrent losses (EQE > 80%) simultaneously minimised. The interfacial CT states separate into free carriers with ≈40-ps time constant. We combine device and spectroscopic data to model the thermodynamics of charge separation and extraction, revealing that the relatively high performance of the devices arises from an optimal adjustment of the CT state energy, which determines how the available overall driving force is efficiently used to maximize both exciton splitting and charge separation. The model proposed is universal for donor:acceptor (D:A) with low driving forces and predicts which D:A will benefit from a morphology optimization for highly efficient OSC.<br />Understanding the mechanism of non-radiative losses in organic photovoltaics is crucial to improve the performance further. Here, the authors use combined device and spectroscopic data to reveal universal model to maximise exciton splitting and charge separation by adjusting the energy of charge transfer state.

Details

Language :
English
ISSN :
20411723
Volume :
12
Database :
OpenAIRE
Journal :
Nature Communications
Accession number :
edsair.doi.dedup.....7c9e633dbc72789495788785f2c55122