University of Wollongong
Browse

Bimolecular recombination coefficient as a sensitive testing parameter for low-mobility solar-cell materials

Download (293.07 kB)
journal contribution
posted on 2024-11-15, 13:09 authored by A Pivrikas, G Juska, Attila MozerAttila Mozer, M Scharber, A Arlauskas, N S Sariciftci, H Stubb, R Osterbacka
Bimolecular charge carrier recombination has been clarified in bulk-heterojunction solar cells based on a blend of regioregular poly(3-hexylthiophene) and 1-(3-methoxycarbonyl)propyl-1-phenyl-[6,6]- methanofullerene using the time-of-flight method. We show how bimolecular recombination influences the charge carrier transport, how it limits the efficiency of low-mobility solar cells, and how to estimate the bimolecular recombination coefficient. We found that bimolecular recombination in these efficient photovoltaic materials is orders of magnitude slower as compared to Langevin recombination expected for low-mobility materials. This effect is inherent to the nanomorphology of the bicontinuous interpenetrating network creating separate pathways for electrons and holes, and paves the way for the fabrication of bulk-heterojunction solar cells where bimolecular recombination is not the limiting factor.

History

Citation

Pivrikas, A., Juska, G., Mozer, A. J., Scharber, M. C., Arlauskas, K., Sariciftci, N., Stubb, H. & Osterbacka, R. (2005). Bimolecular recombination coefficient as a sensitive testing parameter for low-mobility solar-cell materials. Physical Review Letters, 9417 (17), 6806-6806.

Journal title

Physical Review Letters

Volume

94

Issue

17

Language

English

RIS ID

28966

Usage metrics

    Categories

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC