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Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression

Improving thermal stability is of great importance for the industrialization of polymer solar cells (PSC). In this paper, we systematically investigated the high-temperature thermal annealing effect on the device performance of the state-of-the-art polymer:non-fullerene (PM6:Y6) solar cells with an...

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Autores principales: Qin, Xingxing, Yu, Xuelai, Li, Zerui, Fang, Jin, Yan, Lingpeng, Wu, Na, Nyman, Mathias, Österbacka, Ronald, Huang, Rong, Li, Zhiyun, Ma, Chang-Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10574091/
https://www.ncbi.nlm.nih.gov/pubmed/37836699
http://dx.doi.org/10.3390/molecules28196856
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author Qin, Xingxing
Yu, Xuelai
Li, Zerui
Fang, Jin
Yan, Lingpeng
Wu, Na
Nyman, Mathias
Österbacka, Ronald
Huang, Rong
Li, Zhiyun
Ma, Chang-Qi
author_facet Qin, Xingxing
Yu, Xuelai
Li, Zerui
Fang, Jin
Yan, Lingpeng
Wu, Na
Nyman, Mathias
Österbacka, Ronald
Huang, Rong
Li, Zhiyun
Ma, Chang-Qi
author_sort Qin, Xingxing
collection PubMed
description Improving thermal stability is of great importance for the industrialization of polymer solar cells (PSC). In this paper, we systematically investigated the high-temperature thermal annealing effect on the device performance of the state-of-the-art polymer:non-fullerene (PM6:Y6) solar cells with an inverted structure. Results revealed that the overall performance decay (19% decrease) was mainly due to the fast open-circuit voltage (V(OC), 10% decrease) and fill factor (FF, 10% decrease) decays whereas short circuit current (J(SC)) was relatively stable upon annealing at 150 °C (0.5% decrease). Pre-annealing on the ZnO/PM6:Y6 at 150 °C before the completion of cell fabrication resulted in a 1.7% performance decrease, while annealing on the ZnO/PM6:Y6/MoO(3) films led to a 10.5% performance decay, indicating that the degradation at the PM6:Y6/MoO(3) interface is the main reason for the overall performance decay. The increased ideality factor and reduced built-in potential confirmed by dark J − V curve analysis further confirmed the increased interfacial charge recombination after thermal annealing. The interaction of PM6:Y6 and MoO(3) was proved by UV-Vis absorption and XPS measurements. Such deep chemical doping of PM6:Y6 led to unfavorable band alignment at the interface, which led to increased surface charge recombination and reduced built-in potential of the cells after thermal annealing. Inserting a thin C(60) layer between the PM6:Y6 and MoO(3) significantly improved the cells’ thermal stability, and less than 2% decay was measured for the optimized cell with 3 nm C(60).
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spelling pubmed-105740912023-10-14 Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression Qin, Xingxing Yu, Xuelai Li, Zerui Fang, Jin Yan, Lingpeng Wu, Na Nyman, Mathias Österbacka, Ronald Huang, Rong Li, Zhiyun Ma, Chang-Qi Molecules Article Improving thermal stability is of great importance for the industrialization of polymer solar cells (PSC). In this paper, we systematically investigated the high-temperature thermal annealing effect on the device performance of the state-of-the-art polymer:non-fullerene (PM6:Y6) solar cells with an inverted structure. Results revealed that the overall performance decay (19% decrease) was mainly due to the fast open-circuit voltage (V(OC), 10% decrease) and fill factor (FF, 10% decrease) decays whereas short circuit current (J(SC)) was relatively stable upon annealing at 150 °C (0.5% decrease). Pre-annealing on the ZnO/PM6:Y6 at 150 °C before the completion of cell fabrication resulted in a 1.7% performance decrease, while annealing on the ZnO/PM6:Y6/MoO(3) films led to a 10.5% performance decay, indicating that the degradation at the PM6:Y6/MoO(3) interface is the main reason for the overall performance decay. The increased ideality factor and reduced built-in potential confirmed by dark J − V curve analysis further confirmed the increased interfacial charge recombination after thermal annealing. The interaction of PM6:Y6 and MoO(3) was proved by UV-Vis absorption and XPS measurements. Such deep chemical doping of PM6:Y6 led to unfavorable band alignment at the interface, which led to increased surface charge recombination and reduced built-in potential of the cells after thermal annealing. Inserting a thin C(60) layer between the PM6:Y6 and MoO(3) significantly improved the cells’ thermal stability, and less than 2% decay was measured for the optimized cell with 3 nm C(60). MDPI 2023-09-28 /pmc/articles/PMC10574091/ /pubmed/37836699 http://dx.doi.org/10.3390/molecules28196856 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Qin, Xingxing
Yu, Xuelai
Li, Zerui
Fang, Jin
Yan, Lingpeng
Wu, Na
Nyman, Mathias
Österbacka, Ronald
Huang, Rong
Li, Zhiyun
Ma, Chang-Qi
Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title_full Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title_fullStr Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title_full_unstemmed Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title_short Thermal-Induced Performance Decay of the State-of-the-Art Polymer: Non-Fullerene Solar Cells and the Method of Suppression
title_sort thermal-induced performance decay of the state-of-the-art polymer: non-fullerene solar cells and the method of suppression
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10574091/
https://www.ncbi.nlm.nih.gov/pubmed/37836699
http://dx.doi.org/10.3390/molecules28196856
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