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Comparison of device models for organic solar cells: Band-to-band vs. tail states recombination

机译:有机太阳能电池的器件模型比较:带对带和尾态复合

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摘要

The efficiency-limiting recombination mechanism in bulk-heterojunction (BHJ) solar cells is a current topic of investigation and debate in organic photovoltaics. In this work, we simulate state-of-the-art BHJ solar cells using two different models. The first model takes into account band-to-band recombination and field dependent carrier generation. The second model assumes a Shockley-Read-Hall (SRH) recombination mechanism via tail states and field independent carrier generation. Additionally, we include in both cases optical modelling and, thus, position-dependent exciton generation and non-ideal exciton collection. We explore both recombination mechanisms by fitting light and dark current-voltage (JV) characteristics of BHJ cells of five materials: P3HT, MDMO-PPV, MEH-PPV, PCDTBT and PF10TBT, all blended with fullerene derivatives. We show that although main device parameters such as short circuit current, open circuit voltage, fill factor and ideality factor are accurately reproduced by both Langevin and tail recombination, only tail recombination reproduces also the ideality factor of dark characteristics accurately. Nevertheless, the model with SRH recombination via tail states needs the inclusion of external circuitry to account for the heavy shunt present in all the blends, except P3HT:PCBM, when illuminated. Finally, we propose a means to find analytical expressions for the short circuit current by assuming a linear relation between the recombination rate and the concentration of free minority carriers. The model reproduces experimental data of P3HT cells at various thickness values using realistic parameters for this material. Dark JV measurement (circles) of a PCDTBT:PC_(70)BM solar cell (Park et al., Nature Photon. 3, 297 (2009) [1]), the fit with the model including recombination via tail states (solid line) and the fit with the model reported by Koster et al. (Phys. Rev. B 72,085205 (2005) 12], dashed line) that includes bimolecular band-to-band recombination and charge transfer state (CTS) dissociation. The inset shows the JV curves under white light.
机译:体-异质结(BHJ)太阳能电池中的效率限制重组机制是有机光伏研究和讨论的当前主题。在这项工作中,我们使用两种不同的模型来模拟最新的BHJ太阳能电池。第一个模型考虑了频带间重组和场相关载波的产生。第二个模型假设通过尾部状态和场无关的载波生成,实现了Shockley-Read-Hall(SRH)重组机制。此外,在这两种情况下,我们都包括光学建模,因此包括位置依赖的激子生成和非理想激子收集。我们通过拟合五种材料的PHHT,MDMO-PPV,MEH-PPV,PCDTBT和PF10TBT这五种材料与富勒烯衍生物共混的光和暗电流-电压(JV)特性来探索两种重组机制。我们显示,尽管兰格文和尾部重组都能准确地再现主要设备参数,例如短路电流,开路电压,填充因子和理想因子,但只有尾部重组也能准确再现暗特性的理想因子。然而,通过尾态进行SRH重组的模型需要包括外部电路,以解决所有混合物中存在的重分流,但P3HT:PCBM除外(在照明时)。最后,我们提出一种方法,通过假设重组率和自由少数载流子浓度之间的线性关系来找到短路电流的解析表达式。该模型使用该材料的实际参数复制了各种厚度值的P3HT细胞的实验数据。 PCDTBT:PC_(70)BM太阳能电池的深色合资测量(圆圈)(Park等人,Nature Photon。3,297(2009)[1]),与模型的拟合包括通过尾态的重组(实线) ),以及与Koster等人报道的模型的拟合度。 (Phys.Rev.B 72,085205(2005)12],虚线)包括双分子带间重组和电荷转移态(CTS)解离。插图显示了白光下的合资曲线。

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