A facile method to evaluate the influence of trap densities on perovskite solar cell performance

This work discusses how the behaviour of the fill factor (FF) of devices calculated from current-voltage (I-V) measurements at different light intensities can be used as a basis to assess the trap density of methylammonium lead triiodide (MAPbI₃) solar cells. Solar cells with different trap densitie...

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Main Authors: Chen, Bingbing, Hu, Hongwei, Salim, Teddy, Lam, Yeng Ming
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/151642
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spelling sg-ntu-dr.10356-1516422021-07-22T10:32:35Z A facile method to evaluate the influence of trap densities on perovskite solar cell performance Chen, Bingbing Hu, Hongwei Salim, Teddy Lam, Yeng Ming School of Materials Science and Engineering Engineering::Materials Halide Perovskites Efficient This work discusses how the behaviour of the fill factor (FF) of devices calculated from current-voltage (I-V) measurements at different light intensities can be used as a basis to assess the trap density of methylammonium lead triiodide (MAPbI₃) solar cells. Solar cells with different trap densities are prepared using varying molar ratios of methylammonium iodide (MAI) and lead iodide (PbI₂) precursors. Excess MAI in the precursor solution yields more traps/defects in perovskite films and when the trap density increases, trap-filling is the dominant loss mechanism, which results in a low FF in perovskite solar cells with excess MAI; this is especially the case at low light intensities. The FF of perovskite solar cells with excess MAI also shows a non-monotonic dependence on light intensity: the FF first increases, followed by a decrease with increasing light intensity. This non-monotonic dependence of the FF on light intensity suggests that both trap-filling and bimolecular recombination are involved in the determination of the FF in perovskite solar cells in cases where a high density of traps exists. Furthermore, we also observed that a stoichiometric precursor solution could lead to a monotonic light intensity-dependence for the FF in perovskite solar cells: the FF continuously decreases as the light intensity is increased from 1.7 to 100 mW cm⁻². This monotonic dependence of the FF on light intensity implies that bimolecular recombination is the main reason for the loss in FF in perovskite solar cells when a low density of trap states exists. In addition, the peak light intensity (Ppeak), at which the FF shows the highest value, would shift to a smaller value when the amount of excess MAI in the precursor solution is decreased and it approaches the stoichiometric ratio of one. These results suggest that by looking at how the FF varies with light intensity we can deduce the contribution of traps in the performance of perovskite solar cells. This will help tremendously in focusing on areas for improvement for such solar cells. Ministry of Education (MOE) Nanyang Technological University Y. M. L. acknowledges financial support from grants from Innovation Fund Denmark (ALTCELL) and Ministry of Education, Singapore, Tier 1 Funding (RG105/18). We would like to acknowledge the Facility for Analysis, Characterization, Testing and Simulation (FACTS), Nanyang Technological University, Singapore, for use of their electron microscopy, Auger Electron Spectroscopy and XRD facilities. 2021-07-22T10:32:35Z 2021-07-22T10:32:35Z 2019 Journal Article Chen, B., Hu, H., Salim, T. & Lam, Y. M. (2019). A facile method to evaluate the influence of trap densities on perovskite solar cell performance. Journal of Materials Chemistry C, 7(19), 5646-5651. https://dx.doi.org/10.1039/c9tc00816k 2050-7526 https://hdl.handle.net/10356/151642 10.1039/c9tc00816k 2-s2.0-85065888935 19 7 5646 5651 en RG105/18 Journal of Materials Chemistry C © 2019 The Royal Society of Chemistry. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Halide Perovskites
Efficient
spellingShingle Engineering::Materials
Halide Perovskites
Efficient
Chen, Bingbing
Hu, Hongwei
Salim, Teddy
Lam, Yeng Ming
A facile method to evaluate the influence of trap densities on perovskite solar cell performance
description This work discusses how the behaviour of the fill factor (FF) of devices calculated from current-voltage (I-V) measurements at different light intensities can be used as a basis to assess the trap density of methylammonium lead triiodide (MAPbI₃) solar cells. Solar cells with different trap densities are prepared using varying molar ratios of methylammonium iodide (MAI) and lead iodide (PbI₂) precursors. Excess MAI in the precursor solution yields more traps/defects in perovskite films and when the trap density increases, trap-filling is the dominant loss mechanism, which results in a low FF in perovskite solar cells with excess MAI; this is especially the case at low light intensities. The FF of perovskite solar cells with excess MAI also shows a non-monotonic dependence on light intensity: the FF first increases, followed by a decrease with increasing light intensity. This non-monotonic dependence of the FF on light intensity suggests that both trap-filling and bimolecular recombination are involved in the determination of the FF in perovskite solar cells in cases where a high density of traps exists. Furthermore, we also observed that a stoichiometric precursor solution could lead to a monotonic light intensity-dependence for the FF in perovskite solar cells: the FF continuously decreases as the light intensity is increased from 1.7 to 100 mW cm⁻². This monotonic dependence of the FF on light intensity implies that bimolecular recombination is the main reason for the loss in FF in perovskite solar cells when a low density of trap states exists. In addition, the peak light intensity (Ppeak), at which the FF shows the highest value, would shift to a smaller value when the amount of excess MAI in the precursor solution is decreased and it approaches the stoichiometric ratio of one. These results suggest that by looking at how the FF varies with light intensity we can deduce the contribution of traps in the performance of perovskite solar cells. This will help tremendously in focusing on areas for improvement for such solar cells.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Chen, Bingbing
Hu, Hongwei
Salim, Teddy
Lam, Yeng Ming
format Article
author Chen, Bingbing
Hu, Hongwei
Salim, Teddy
Lam, Yeng Ming
author_sort Chen, Bingbing
title A facile method to evaluate the influence of trap densities on perovskite solar cell performance
title_short A facile method to evaluate the influence of trap densities on perovskite solar cell performance
title_full A facile method to evaluate the influence of trap densities on perovskite solar cell performance
title_fullStr A facile method to evaluate the influence of trap densities on perovskite solar cell performance
title_full_unstemmed A facile method to evaluate the influence of trap densities on perovskite solar cell performance
title_sort facile method to evaluate the influence of trap densities on perovskite solar cell performance
publishDate 2021
url https://hdl.handle.net/10356/151642
_version_ 1707050391866179584