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Impact of charge transport on current-voltage characteristics and power-conversion efficiency of organic solar cells.


ABSTRACT: This work elucidates the impact of charge transport on the photovoltaic properties of organic solar cells. Here we show that the analysis of current-voltage curves of organic solar cells under illumination with the Shockley equation results in values for ideality factor, photocurrent and parallel resistance, which lack physical meaning. Drift-diffusion simulations for a wide range of charge-carrier mobilities and illumination intensities reveal significant carrier accumulation caused by poor transport properties, which is not included in the Shockley equation. As a consequence, the separation of the quasi Fermi levels in the organic photoactive layer (internal voltage) differs substantially from the external voltage for almost all conditions. We present a new analytical model, which considers carrier transport explicitly. The model shows excellent agreement with full drift-diffusion simulations over a wide range of mobilities and illumination intensities, making it suitable for realistic efficiency predictions for organic solar cells.

SUBMITTER: Wurfel U 

PROVIDER: S-EPMC4421856 | biostudies-literature | 2015 Apr

REPOSITORIES: biostudies-literature

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Impact of charge transport on current-voltage characteristics and power-conversion efficiency of organic solar cells.

Würfel Uli U   Neher Dieter D   Spies Annika A   Albrecht Steve S  

Nature communications 20150424


This work elucidates the impact of charge transport on the photovoltaic properties of organic solar cells. Here we show that the analysis of current-voltage curves of organic solar cells under illumination with the Shockley equation results in values for ideality factor, photocurrent and parallel resistance, which lack physical meaning. Drift-diffusion simulations for a wide range of charge-carrier mobilities and illumination intensities reveal significant carrier accumulation caused by poor tra  ...[more]

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