The two faces of capacitance: New interpretations for electrical impedance measurements of perovskite solar cells and their relation to hysteresis

电容 钙钛矿(结构) 磁滞 关系(数据库) 凝聚态物理 电阻率和电导率 电阻抗 材料科学 光电子学 化学 物理 电气工程 计算机科学 电极 工程类 物理化学 数据挖掘 结晶学
作者
Daniel A. Jacobs,Heping Shen,Florian Pfeffer,Jun Peng,Thomas P. White,Fiona J. Beck,Kylie Catchpole
出处
期刊:Journal of Applied Physics [American Institute of Physics]
卷期号:124 (22) 被引量:170
标识
DOI:10.1063/1.5063259
摘要

Perovskite solar cells are notorious for exhibiting transient behavior not seen in conventional inorganic semiconductor devices. Significant inroads have been made into understanding this fact in terms of rapid ion migration, now a well-established property of the prototype photovoltaic perovskite MAPbI3 and strongly implicated in the newer mixed compositions. Here, we study the manifestations of ion migration in frequency-domain small-signal measurements, focusing on the popular technique of Electrical Impedance Spectroscopy (EIS). We provide new interpretations for a variety of previously puzzling features, including giant photoinduced low-frequency capacitance and negative capacitance in a variety of forms. We show that these apparently strange measurements can be rationalized by the splitting of AC current into two components, one associated with charge-storage and the other with the quasi-steady-state recombination current of electrons and holes. The latter contribution to the capacitance can take either a positive or a negative sign and is potentially very large when slow, voltage-sensitive processes such as ion migration are at play. Using numerical drift-diffusion semiconductor models, we show that giant photoinduced capacitance, inductive loop features, and low-frequency negative capacitance all emerge naturally as consequences of ion migration via its coupling to quasi-steady-state electron and hole currents. In doing so, we unify the understanding of EIS measurements with the comparably well-developed theory of rate dependent current-voltage (I-V) measurements in perovskite cells. Comparing the two techniques, we argue that EIS is more suitable for quantifying I-V hysteresis than conventional methods based on I-V sweeps and demonstrate this application on a variety of cell types.
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