论文标题

从其阻抗响应中推论钙钛矿太阳能电池的关键物理特性:来自漂移扩散建模的见解

Deducing the key physical properties of a perovskite solar cell from its impedance response: insights from drift-diffusion modelling

论文作者

Riquelme, Antonio, Bennett, Laurence J., Courtier, Nicola E., Wolf, Matthew J., Contreras-Bernal, Lidia, Walker, Alison, Richardson, Giles, Anta, Juan A.

论文摘要

解释钙钛矿太阳能电池(PSC)的阻抗反应比大多数其他光伏的挑战更大。这是出于多种原因,其中最有意义的是金属卤化物钙钛矿的混合离子电子传导性能以及制造稳定和可重现设备的困难。对各种PSC进行的实验研究产生了多种阻抗光谱形状。但是,它们都具有共同的特征,其中最值得注意的是它们至少具有两个信号,在高频和低频下,对温度,照明和电气偏置的特征响应不同。通过对细胞内的离子和载体的传输和重组的实验和漂移扩散建模的结合来表明,这些共同特征是通过模拟很好地复制的。此外,我们表明高频响应包含与PSC稳态性能有关的所有关键信息,即,它是重组机制的签名,并提供了电荷收集效率的度量。此外,稳态性能受到钙钛矿层中移动离子电荷的分布的显着影响。因此,应使用在预计细胞可操作的稳态电压状态下进行的高频阻抗测量值进行比较,以进行不同设备的电性能。

Interpreting the impedance response of perovskite solar cells (PSC) is significantly more challenging than for most other photovoltaics. This is for a variety of reasons, of which the most significant are the mixed ionic-electronic conduction properties of metal halide perovskites and the difficulty in fabricating stable, and reproducible, devices. Experimental studies, conducted on a variety of PSCs, produce a variety of impedance spectra shapes. However, they all possess common features, the most noteworthy of which is that they have at least two signals, at high and low frequency, with different characteristic responses to temperature, illumination and electrical bias. It is shown, by a combination of experiment and drift-diffusion modelling of the ion and charge carrier transport and recombination within the cell, that these common features are well reproduced by the simulation. In addition, we show that the high frequency response contains all the key information relating to the steady-state performance of a PSC, i.e. it is a signature of the recombination mechanisms and provides a measure of charge collection efficiency. Moreover, steady-state performance is significantly affected by the distribution of mobile ionic charge within the perovskite layer. Comparison between the electrical properties of different devices should therefore be made using high frequency impedance measurements performed in the steady-state voltage regime in which the cell is expected to operate.

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