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A computational study of solvent effects on polymer photovoltaics considering the field dependendent series resistance

机译:考虑场相关串联电阻的溶剂对聚合物光伏效应的计算研究

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In order to fabricate high performance polymer solar cells, donor:acceptor mixture must be prepared using a proper solvent. Since solubility of C, as a truly cost effective acceptor, is very limited in common solvents, finding a suitable solvent can enhance the Poly(3-hexylthiophene):C (P3HT:C) based solar cell performance in terms of short circuit current (J), fill factor (FF) and consequently power conversion efficiency (PCE). The formation of C aggregates and P3HT crystallinity depend on the selection of proper solvent. These two factors influence several electrical and optical properties of the cell. In this work, 1,2-Dichlorobenzene (ODCB), the most common solvent, and a mixture of 1-Chloronaphtalene and Chlorobenzene and 1-Methylnaphtalene and Chlorobenzene are chosen as two alternative solvents for preparing P3HT:C films and simulation is performed to understand how these solvents influence the solar cell behavior. The performance of a P3HT:PCBM cell prepared with ODCB is also considered for comparison. A numerical model is employed to simulate the operation of different cells mentioned. In order to model the finite slope of I-V curve in large forward bias, the effect of voltage dependent series resistance is also considered. A minimizing algorithm is employed To determine the estimated values of unknown code input parameters, minimizing the fitting error of simulated and experimental I-V curves. Comparing the numerical model with conventional one shows that traditional models may not be accurate enough for analyzing organic photovoltaics. It is also shown that every 20% increase in G results in about 20% J enhancement; this amount of increase is easily obtained using a proper solvent. Another crucial factor in determining solar cell performance is mobility which considerably depends on the solvent. This work provides experimentalists with an idea of how they should se- ect a solvent as a determinative material in solution-processed based solar cells. The results can also be generalized to find a proper solvent for other active layer materials.
机译:为了制造高性能聚合物太阳能电池,必须使用适当的溶剂制备供体:受体混合物。由于C作为真正具有成本效益的受体的溶解度在常见溶剂中非常有限,因此就短路电流而言,找到合适的溶剂可以增强基于聚(3-己基噻吩):C(P3HT:C)的太阳能电池的性能( J),填充系数(FF)以及因此的功率转换效率(PCE)。 C聚集体的形成和P3HT结晶度取决于适当溶剂的选择。这两个因素影响电池的几种电学和光学特性。在这项工作中,选择最常用的溶剂1,2-二氯苯(ODCB)和1-氯萘和氯苯与1-甲基萘和氯苯的混合物作为制备P3HT:C膜的两种替代溶剂,并进行了模拟了解这些溶剂如何影响太阳能电池的性能。还考虑使用ODCB制备的P3HT:PCBM电池的性能进行比较。使用数值模型来模拟提到的不同电池的操作。为了建模大正向偏压下I-V曲线的有限斜率,还考虑了电压依赖性串联电阻的影响。采用最小化算法来确定未知代码输入参数的估计值,从而最小化模拟和实验I-V曲线的拟合误差。将数值模型与常规模型进行比较表明,传统模型可能不够准确,无法分析有机光伏。还表明,G的每增加20%,J的增加约20%。使用适当的溶剂很容易获得这种增加量。决定太阳能电池性能的另一个关键因素是迁移率,它在很大程度上取决于溶剂。这项工作为实验者提供了一个想法,即他们应如何在溶液处理的太阳能电池中选择溶剂作为决定性材料。该结果也可以被推广以寻找适合于其他活性层材料的溶剂。

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