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Monte Carlo simulation of geminate pair recombination dynamics in organic photovoltaic devices : multi-exponential, field-dependent kinetics and its interpretation.

机译:蒙特卡洛模拟的有机光伏器件中的配对对重组动力学:多指数,依赖于场的动力学及其解释。

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摘要

Monte Carlo simulations are used to examine charge-transfer (CT) state recombination dynamics considering the effects of energetic disorder and bulk heterojunction morphology. Strongly biexponential recombination kinetics were observed, in agreement with spectroscopy. Data over a range of electric fields 106 ≤ F ≤ 108 V m–1 suggest that the slow component of recombination is due to energetic and spatial trapping of charges, as increasing the field reduces the magnitude of the slow decay. This behavior could not be described using a simple Onsager–Braun type model; hence, an alternative kinetic framework including an intermediate “quasi-free” state between the CT state and free charges is proposed and subsequently shown to fit the MC data very well. The predictive capability of the modified model was then tested by repeating MC simulations with an altered recombination rate. It is shown that more than just the recombination rate had to be changed in the modified kinetic model to retrieve good agreement with MC simulations. This suggests that the derived rates from the modified kinetic model do not have exact correspondence with physical processes in organic photovoltaic blends. We attribute the difficulty in fitting kinetic models to CT recombination data to the dispersive nature of hopping transport.
机译:考虑到高能障碍和本体异质结形态的影响,使用蒙特卡洛模拟来检查电荷转移(CT)状态重组动力学。观察到强烈的双指数重组动力学,与光谱学一致。电场范围为106≤F≤108 V m–1的数据表明,重组的缓慢成分是由于电荷的高能和空间俘获,随着电场的增加减小了缓慢衰减的幅度。无法使用简单的Onsager-Braun类型模型来描述此行为。因此,提出了包括在CT状态和自由电荷之间的中间“准自由”状态的替代动力学框架,并随后证明该框架非常适合MC数据。然后通过以改变的重组率重复MC模拟来测试修改后模型的预测能力。结果表明,在修改后的动力学模型中,不仅要改变重组率,而且要与MC模拟取得良好的一致性。这表明,从修正的动力学模型得出的速率与有机光伏混合物中的物理过程没有确切的对应关系。我们将难以将动力学模型拟合到CT重组数据归因于跳跃运输的分散性。

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  • 年度 2014
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