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

机译:电荷传输对有机太阳能电池电流-电压特性和功率转换效率的影响

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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.
机译:这项工作阐明了电荷传输对有机太阳能电池光伏性能的影响。在这里,我们表明,使用Shockley方程对有机太阳能电池在电流-电压曲线下的分析得出理想因子,光电流和并联电阻的值,这些值缺乏物理意义。各种电荷载流子迁移率和照明强度的漂移-扩散模拟显示出由于传输性能差而导致的大量载流子积累,这没有包含在Shockley方程中。结果,在几乎所有条件下,有机光敏层中准费米能级的间隔(内部电压)与外部电压都大不相同。我们提出了一个新的分析模型,该模型明确考虑了承运人的运输。该模型与广泛的迁移率和照明强度下的完全漂移-扩散模拟显示出极好的一致性,使其适合于有机太阳能电池的实际效率预测。

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