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On the Impact of Contact Selectivity and Charge Transport on the Open-Circuit Voltage of Organic Solar Cells

机译:接触选择性和电荷传输对有机太阳能电池开路电压的影响

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摘要

The selectivity of electrodes of solar cells is a critical factor that can limit the overall efficiency. If the selectivity of an electrode is not sufficient both electrons and holes recombine at its surface. In materials with poor transport properties such as in organic solar cells, these surface recombination currents are accompanied by large gradients of the quasi-Fermi energies as the driving force. Experimental results from current-voltage characteristics, advanced photo-and electroluminescence as well as charge extraction of three different photoactive materials are shown and compared to drift-diffusion simulations. It can be concluded that in cases of electrodes with reduced selectivity the decrease of the open-circuit voltage can be divided into two distinct contributions, the reduction of the overall steady-state charge carrier density and the gradients of the quasi-Fermi energies. The results clearly show that for photoactive layers with poor transport properties, the gradient of the quasi-Fermi energy in the vicinity of the contact is the main contribution to the loss in open-circuit voltage. For imbalanced mobilities, this gives rise to the phenomenon that it is more challenging to realize a selective contact for the less mobile charge carrier, i.e., the hole contact in most organic solar cells.
机译:太阳能电池电极的选择性是可能限制整体效率的关键因素。如果电极的选择性不足,则电子和空穴都在其表面复合。在传输性能较差的材料(例如有机太阳能电池)中,这些表面重组电流伴随着作为驱动力的准费米能量的大梯度。显示了电流-电压特性,先进的光致发光和电致发光以及三种不同光敏材料的电荷提取的实验结果,并将其与漂移扩散仿真进行了比较。可以得出结论,在电极选择性降低的情况下,开路电压的降低可以分为两个不同的贡献:整体稳态电荷载流子密度的降低和准费米能量的梯度。结果清楚地表明,对于传输性能较差的光敏层,在触点附近的准费米能量梯度是造成开路电压损失的主要因素。对于不平衡的迁移率,这引起以下现象,即对于较少移动的电荷载体实现选择性接触更具挑战性,即大多数有机太阳能电池中的空穴接触。

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  • 来源
    《Advanced energy materials》 |2017年第5期|1601750.1-1601750.11|共11页
  • 作者单位

    Fraunhofer Inst Solar Energy Syst ISE, Heidenhofstr 2, D-79110 Freiburg, Germany|Albert Ludwigs Univ Freiburg, Freiburg Mat Res Ctr FMF, Stefan Meier Str 21, D-79104 Freiburg, Germany;

    Fraunhofer Inst Solar Energy Syst ISE, Heidenhofstr 2, D-79110 Freiburg, Germany|Albert Ludwigs Univ Freiburg, Freiburg Mat Res Ctr FMF, Stefan Meier Str 21, D-79104 Freiburg, Germany;

    Fraunhofer Inst Solar Energy Syst ISE, Heidenhofstr 2, D-79110 Freiburg, Germany;

    Fraunhofer Inst Solar Energy Syst ISE, Heidenhofstr 2, D-79110 Freiburg, Germany|Albert Ludwigs Univ Freiburg, Freiburg Mat Res Ctr FMF, Stefan Meier Str 21, D-79104 Freiburg, Germany;

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