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Charge separation at disordered semiconductor heterojunctions from random walk numerical simulations

机译:基于随机游走数值模拟的无序半导体异质结处的电荷分离

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Many recent advances in novel solar cell technologies are based on charge separation in disordered semiconductor heterojunctions. in this work we use the Random Walk Numerical Simulation (RWNS) method to model the dynamics of electrons and holes in two disordered semiconductors in contact. Miller-Abrahams hopping rates and a tunnelling distance-dependent electron-hole annihilation mechanism are used to model transport and recombination, respectively. To test the validity of the model, three numerical "experiments" have been devised: (1) in the absence of constant illumination, charge separation has been quantified by computing surface photovoltage (SPV) transients. (2) By applying a continuous generation of electron-hole pairs, the model can be used to simulate a solar cell under steady-state conditions. This has been exploited to calculate open-circuit voltages and recombination currents for an archetypical bulk heterqjunction solar cell (BHJ). (3) The calculations have been extended to nanostructured solar cells with inorganic sensitizers to study, specifically, non-ideality in the recombination rate. The RWNS model in combination with exponential disorder and an activated tunnelling mechanism for transport and recombination is shown to reproduce correctly charge separation parameters in these three "experiments". This provides a theoretical basis to study relevant features of novel solar cell technologies.
机译:新型太阳能电池技术的许多最新进展都基于无序半导体异质结中的电荷分离。在这项工作中,我们使用随机游走数值模拟(RWNS)方法来模拟接触的两个无序半导体中电子和空穴的动力学。 Miller-Abrahams跳跃率和依赖于隧穿距离的电子-空穴an灭机制分别用于模型化运输和重组。为了测试该模型的有效性,设计了三个数值“实验”:(1)在没有恒定照明的情况下,已经通过计算表面光电压(SPV)瞬变来量化电荷分离。 (2)通过应用连续生成的电子-空穴对,该模型可用于模拟稳态条件下的太阳能电池。已将其用于计算原型体异质结太阳能电池(BHJ)的开路电压和复合电流。 (3)该计算已扩展到具有无机敏化剂的纳米结构太阳能电池,以专门研究复合率的非理想性。 RWNS模型与指数紊乱和用于传输和重组的激活隧穿机制相结合,显示出可以正确重现这三个“实验”中的电荷分离参数。这为研究新型太阳能电池技术的相关特征提供了理论基础。

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