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On voltage, photovoltage, and photocurrent in bulk heterojunction organic solar cells

机译:关于本体异​​质结有机太阳能电池中的电压,光电压和光电流

摘要

The interpretation of voltage, photovoltage, and photocurrent in polymer/fullerene bulk heterojunction (BHJ) solar cells is discussed in terms of fundamental device models and results of capacitance spectroscopy. First we establish the relationship between the applied voltage (which is the difference of Fermi levels) and the variation of electrostatic potential that governs the drift field. We then show the most common distribution of carriers and Fermi levels in the blend layer, supported on experimental results of impedance spectroscopy of P3HT:PCBM solar cells. We arrive at the conclusion that charge separation and charge transportation has very little to do with a built-in electric field between metal contacts, while kinetics plays a major role in photocurrent production. Finally, we discuss the key factors relevant to understand device properties and power conversion efficiencies of the BHJ solar cells: recombination, charge generation, and the current–potential curve, based on the suggested model that emphasizes mobile electrons and holes (that we term quasifree carriers) contributing to the respective Fermi levels.
机译:聚合物/富勒烯本体异质结(BHJ)太阳能电池中电压,光电压和光电流的解释是根据基本器件模型和电容光谱学的结果进行讨论的。首先,我们确定施加的电压(费米能级之差)与控制漂移场的静电势变化之间的关系。然后,我们在混合层中显示了最常见的载流子分布和费米能级,并得到了P3HT:PCBM太阳能电池阻抗谱实验结果的支持。我们得出的结论是,电荷分离和电荷传输与金属触点之间的内置电场关系不大,而动力学在光电流产生中起主要作用。最后,我们基于强调移动电子和空穴的建议模型(我们称为准自由电子),讨论了与了解BHJ太阳能电池的器件特性和功率转换效率有关的关键因素:复合,电荷产生以及电流-电位曲线。运营商)贡献各自的费米水平。

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