Analytical model for the open-circuit voltage and its associated resistance in organic planar heterojunction solar cells
Author(s) -
David Cheyns,
J. Poortmans,
Paul Heremans,
Carsten Deibel,
Stijn Verlaak,
Barry P. Rand,
Jan Genoe
Publication year - 2008
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.77.165332
Subject(s) - open circuit voltage , heterojunction , organic solar cell , planar , acceptor , materials science , work function , cathode , equivalent series resistance , voltage , work (physics) , solar cell , physics , optoelectronics , metal , condensed matter physics , chemistry , thermodynamics , computer science , quantum mechanics , computer graphics (images) , composite material , polymer , metallurgy
We derive an analytical formula for the open-circuit voltage (V-oc) of organic planar heterojunction solar cells under standard operating conditions. We find that the type of free carrier recombination at the interface between the donor and acceptor materials controls the slope of V-oc vs incident light intensity. By using the same derivation, an equation for the resistance around V-oc is obtained. From this, we investigate two parameters in more detail and compare them to experiments. The first is the work function of the cathode metal. We show that, within our model, V-oc does not depend on this work function, while the cell resistance around V-oc is strongly dependent on it. Second, we find that the asymptotic resistance around V-oc is a third-order power function of the thickness of the organic layers (acceptor or donor). The model provides insights to achieve low-resistivity high open-circuit voltage organic solar cells.status: publishe
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