Elucidating Transport-Recombination Mechanisms in Perovskite Solar Cells by Small-Perturbation Techniques

被引:177
作者
Guillen, Elena [1 ]
Javier Ramos, F. [1 ]
Anta, Juan A. [2 ]
Ahmad, Shahzada [1 ]
机构
[1] Abengoa Res, Seville 41014, Spain
[2] Univ Pablo de Olavide, Dept Phys Chem & Nat Syst, Seville 41013, Spain
关键词
INORGANIC HOLE CONDUCTOR; CHARGE-TRANSPORT; ELECTRON-TRANSPORT; BACK-REACTION; TIO2; FILMS; DYE; PHOTOCURRENT; EFFICIENCY; PHOTOVOLTAGE; PERFORMANCE;
D O I
10.1021/jp5069076
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Solar cells using perovskite as semiconducting pigment have recently attracted a surge of interest owing to their remarkable solar-to-electric conversion efficiencies and ease of processing. In this direction various device architectures and materials have been employed, and attempts were made to elucidate the underlying working principles. However, factors governing the performance of perovskite devices are still obscure. For instance, the interpretation of electrochemical impedance spectroscopy (EIS) is not straightforward, and the complexity of the equivalent circuits hinders the identification of transport and recombination mechanisms in devices, especially those that determine the performance of the device. Here in we carried out a comprehensive and complementary characterization of perovskite solar cells by using an array of small-perturbation techniques. EIS and intensity modulated photocurrent and photovoltage spectroscopy (IMPS/IMVS). The employment of IMPS allowed us to identify two transport times separated by 2 orders of magnitude and with opposite voltage dependences. For recombination, well agreement was found between lifetimes obtained by IMVS and EIS. The feature associated with recombination and charge accumulation in an impedence spectrum through correlation to the IMVS response was experimentally indentified. This correlation paves the way to reconstruct the current-voltage curve using a continuity equation model for transport and recombination in the working device. The adopted methodology demonstrates that complementary techniques facilitate the interpretation of EIS results in perovskite solar cells, allowing us for the identification of the transport recombination mechanisms and providing new insights into the efficiency determining steps.
引用
收藏
页码:22913 / 22922
页数:10
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