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Computer simulation of heterogeneous polymer photovoltaic devices

机译:异构聚合物光伏器件的计算机模拟

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Polymer-based photovoltaic devices have the potential for widespread usage due to their low cost per watt and mechanical flexibility. Efficiencies close to 9.0% have been achieved recently in conjugated polymer based organic solar cells (OSCs). These devices were fabricated using solvent-based processing of electron-donating and electron-accepting materials into the so-called bulk heterojunction (BHJ) architecture. Experimental evidence suggests that a key property determining the power-conversion efficiency of such devices is the final morphological distribution of the donor and acceptor constituents. In order to understand the role of morphology on device performance, we develop a scalable computational framework that efficiently interrogates OSCs to investigate relationships between the morphology at the nano-scale with the device performance. In this work, we extend the Buxton and Clarke model (2007 Modelling Simul. Mater. Sci. Eng. 15 1326) to simulate realistic devices with complex active layer morphologies using a dimensionally independent, scalable, finite-element method. We incorporate all stages involved in current generation, namely (1) exciton generation and diffusion, (2) charge generation and (3) charge transport in a modular fashion. The numerical challenges encountered during interrogation of realistic microstructures are detailed. We compare each stage of the photovoltaic process for two microstructures: a BHJ morphology and an idealized sawtooth morphology. The results are presented for both two- and three-dimensional structures.
机译:基于聚合物的光伏器件由于其每瓦成本低和机械柔韧性而具有广泛使用的潜力。最近,基于共轭聚合物的有机太阳能电池(OSC)的效率接近9.0%。这些设备是使用基于溶剂的供电子和受电子材料加工成所谓的体异质结(BHJ)架构制造的。实验证据表明,决定此类设备的电源转换效率的关键特性是供体和受体成分的最终形态分布。为了了解形态对设备性能的作用,我们开发了可扩展的计算框架,该框架可有效地询问OSC,以研究纳米级形态与设备性能之间的关系。在这项工作中,我们扩展了Buxton和Clarke模型(2007 Modeling Simul。Mater。Sci。Eng。15 1326),使用尺寸独立,可扩展的有限元方法来模拟具有复杂有源层形态的现实设备。我们结合了电流产生的所有阶段,即(1)激子产生和扩散,(2)电荷产生和(3)以模块方式的电荷传输。详细询问现实的微结构时遇到的数值挑战。我们比较了两个微观结构的光伏过程的每个阶段:BHJ形态和理想的锯齿形。给出了二维和三维结构的结果。

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