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Origin of the Open Circuit Voltage of Plastic Solar Cells

Christoph J. BrabecInstitut für Halbleiter-und Festkörperphysik Johannes Kepler University of Linz Altenbergerstr. 69, A-4040 Linz (AustriaAntonio CravinoLinz Institute for Organic Solar Cells (LIOS), Physical Chemistry, Johannes Kepler University of Linz, Altenbergerstr. 69, A-4040 Linz (Austria)D MeißnerLinz Institute for Organic Solar Cells (LIOS), Physical Chemistry, Johannes Kepler University of Linz, Altenbergerstr. 69, A-4040 Linz (Austria)Niyazi Serdar SariçiftçiLinz Institute for Organic Solar Cells (LIOS), Physical Chemistry, Johannes Kepler University of Linz, Altenbergerstr. 69, A-4040 Linz (Austria)Thomas FromherzInstitut für Halbleiter- und Festkörperphysik, Johannes Kepler University of Linz, Altenbergerstr. 69, A-4040 Linz (Austria)Minze T. RispensStratingh Institute and Materials Science Centre, University of Groningen, Nijenborgh 4, NL-9747 AG Groningen (The Netherlands)Luis SánchezStratingh Institute and Materials Science Centre, University of Groningen, Nijenborgh 4, NL-9747 AG Groningen (The Netherlands)Jan C. HummelenStratingh Institute and Materials Science Centre, University of Groningen, Nijenborgh 4, NL-9747 AG Groningen (The Netherlands)
2001en
ABI

Аннотация

A series of highly soluble fullerene derivatives with varying acceptor strengths (i.e., first reduction potentials) was synthesized and used as electron acceptors in plastic solar cells. These fullerene derivatives, methanofullerene [6,6]-phenyl C61-butyric acid methyl ester (PCBM), a new azafulleroid, and a ketolactam quasifullerene, show a variation of almost 200 mV in their first reduction potential. The open circuit voltage of the corresponding devices was found to correlate directly with the acceptor strength of the fullerenes, whereas it was rather insensitive to variations of the work function of the negative electrode. These observations are discussed within the concept of Fermi level pinning between fullerenes and metals via surface charges.

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