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Can slow-moving ions explain hysteresis in the current-voltage curves of perovskite solar cells?

机译:缓慢移动的离子能解释钙钛矿太阳能电池电流-电压曲线中的滞后现象吗?

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摘要

The hypothesis that ion motion is responsible for anomalous hysteresis in the current-voltage curves of perovskite solar cells is investigated through a combination of electrical transport modelling and experimental measurements. In a combined computational and experimental study, good agreement is obtained between experiment and the results of a charge transport model covering mixed ionic-electronic conduction. Our model couples electrons, holes and defect mediated ion motion suggesting that slow moving ions are indeed the origin of the hysteresis. The magnitude of the ion diffusion coefficient required to match experiment and theory, similar to 10(-12) cm(2) s(-1), depends on the cell, but is similar to that predicted by microscopic theory of vacancy mediated diffusion. The investigation is extended to preconditioning procedures which are known to substantially influence the hysteresis. The method developed for solving the stiff equations in the drift diffusion model is widely applicable to other double layer problems occurring in electrochemical applications such as the evolution of transmembrane potentials in living cells.
机译:通过结合电迁移模型和实验测量,研究了钙钛矿型太阳能电池电流-电压曲线中离子运动是异常滞后现象的原因。在综合的计算和实验研究中,实验与涵盖混合离子电子传导的电荷传输模型的结果之间取得了很好的一致性。我们的模型将电子,空穴和缺陷介导的离子运动耦合在一起,表明缓慢移动的离子确实是磁滞现象的起源。匹配实验和理论所需的离子扩散系数的大小,类似于10(-12)cm(2)s(-1),取决于细胞,但类似于空位介导的扩散的微观理论所预测的大小。研究范围扩展到已知会严重影响磁滞的预处理程序。为解决漂移扩散模型中的刚性方程而开发的方法广泛适用于电化学应用中发生的其他双层问题,例如活细胞中跨膜电位的演变。

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