Operando dynamics of trapped carriers in perovskite solar cells observed via infrared optical activation spectroscopy

被引:0
作者
Jiaxin Pan
Ziming Chen
Tiankai Zhang
Beier Hu
Haoqing Ning
Zhu Meng
Ziyu Su
Davide Nodari
Weidong Xu
Ganghong Min
Mengyun Chen
Xianjie Liu
Nicola Gasparini
Saif A. Haque
Piers R. F. Barnes
Feng Gao
Artem A. Bakulin
机构
[1] Imperial College London,Department of Chemistry and Centre for Processible Electronics
[2] Linköping University,Department of Physics, Chemistry and Biology (IFM)
[3] Linköping University,Laboratory of Organic Electronics, ITN
[4] Imperial College London,Department of Physics
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Nature Communications | / 14卷
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摘要
Conventional spectroscopies are not sufficiently selective to comprehensively understand the behaviour of trapped carriers in perovskite solar cells, particularly under their working conditions. Here we use infrared optical activation spectroscopy (i.e., pump-push-photocurrent), to observe the properties and real-time dynamics of trapped carriers within operando perovskite solar cells. We compare behaviour differences of trapped holes in pristine and surface-passivated FA0.99Cs0.01PbI3 devices using a combination of quasi-steady-state and nanosecond time-resolved pump-push-photocurrent, as well as kinetic and drift-diffusion models. We find a two-step trap-filling process: the rapid filling (~10 ns) of low-density traps in the bulk of perovskite, followed by the slower filling (~100 ns) of high-density traps at the perovskite/hole transport material interface. Surface passivation by n-octylammonium iodide dramatically reduces the number of trap states (~50 times), improving the device performance substantially. Moreover, the activation energy (~280 meV) of the dominant hole traps remains similar with and without surface passivation.
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