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Random walk numerical simulation for hopping transport at finite carrier concentrations: diffusion coefficient and transport energy concept

机译:有限载流子处跳跃传输的随机游走数值模拟:扩散系数和传输能概念

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The random walk numerical simulation (RWNS) method is used to compute diffusion coefficients for hopping transport in a fully disordered medium at finite carrier concentrations. We use Miller-Abrahams jumping rates and an exponential distribution of energies to compute the hopping times in the random walk simulation. The computed diffusion coefficient shows an exponential dependence with respect to Fermi-level and Arrhenius behavior with respect to temperature. This result indicates that there is a well-defined transport level implicit to the system dynamics. To establish the origin of this transport level we construct histograms to monitor the energies of the most visited sites. In addition, we construct "corrected" histograms where backward moves are removed. Since these moves do not contribute to transport, these histograms provide a better estimation of the effective transport level energy. The analysis of this concept in connection with the Fermi-level dependence of the diffusion coefficient and the regime of interest for the functioning of dye-sensitised solar cells is thoroughly discussed.
机译:随机游走数值模拟(RWNS)方法用于计算在有限载流子浓度下在完全无序的介质中跳跃传输的扩散系数。我们使用Miller-Abrahams跳跃率和能量的指数分布来计算随机行走模拟中的跳跃时间。计算出的扩散系数显示出相对于费米能级的指数依赖性,以及关于温度的阿伦尼乌斯行为。该结果表明系统动力学隐含了定义明确的传输级别。为了确定这种运输水平的起源,我们构建了直方图来监视访问量最大的站点的能量。此外,我们构造了“校正”直方图,其中删除了向后移动。由于这些运动对运输没有帮助,因此这些直方图可以更好地估算有效运输能级的能量。结合扩散系数的费米能级依赖性和对染料敏化太阳能电池功能的关注机制,对该概念进行了分析。

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