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Organic Solar Cell Efficiencies Under the Aspect of Reduced Surface Recombination Velocities

机译:降低表面复合速度下的有机太阳能电池效率

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摘要

The charge carrier mobility is a key parameter for the organic bulk heterojunction solar cell efficiency. It was recently shown that the interplay charge carrier transport and recombination, both depending on electron and hole mobilities, lead to a point of maximum power conversion efficiency at a finite mobility. Changes of bulk and surface recombination rate, however, can strongly influence this behavior. These processes were previously not considered adequately, as surface recombination velocities of infinity were implicitly assumed or bulk recombination parameters not discussed in detail. In this manuscript, using a macroscopic effective medium simulation, we consider how a reduced bulk recombination process in combination with finite surface recombination velocities affect the power conversion efficiency. Instead of a maximum efficiency at a specific charge carrier mobility, we show that with realistic assumptions and passivated surfaces the efficiency is increased further, saturating only at higher mobilities. Thus, a mobility optimization is more important for the solar cell performance than previously shown.
机译:载流子迁移率是有机体异质结太阳能电池效率的关键参数。最近显示,相互作用的电荷载流子的传输和复合,都取决于电子和空穴的迁移率,导致在有限的迁移率下达到最大功率转换效率。然而,体积和表面复合率的变化会强烈影响这种行为。以前没有充分考虑这些过程,因为隐式假定了无穷大的表面重组速度,或者没有详细讨论整体重组参数。在本手稿中,我们使用宏观有效的介质模拟,考虑了减少的本体重组过程与有限的表面重组速度相结合如何影响功率转换效率。我们没有显示出在特定载流子迁移率下的最大效率,而是表明,在现实的假设和钝化的表面下,效率会进一步提高,仅在更高的迁移率下才会饱和。因此,迁移率优化对太阳能电池的性能比以前显示的更为重要。

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