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Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency

Achieving the simultaneous increases in the open circuit voltage (V(oc)), short circuit current (J(sc)) and fill factor (FF) necessary to further increase the power conversion efficiency (PCE) of organic photovoltaics (OPV) requires a unified understanding of how molecular and device parameters affe...

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Autores principales: Azzouzi, Mohammed, Gallop, Nathaniel P., Eisner, Flurin, Yan, Jun, Zheng, Xijia, Cha, Hyojung, He, Qiao, Fei, Zhuping, Heeney, Martin, Bakulin, Artem A., Nelson, Jenny
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8924960/
https://www.ncbi.nlm.nih.gov/pubmed/35419090
http://dx.doi.org/10.1039/d1ee02788c
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author Azzouzi, Mohammed
Gallop, Nathaniel P.
Eisner, Flurin
Yan, Jun
Zheng, Xijia
Cha, Hyojung
He, Qiao
Fei, Zhuping
Heeney, Martin
Bakulin, Artem A.
Nelson, Jenny
author_facet Azzouzi, Mohammed
Gallop, Nathaniel P.
Eisner, Flurin
Yan, Jun
Zheng, Xijia
Cha, Hyojung
He, Qiao
Fei, Zhuping
Heeney, Martin
Bakulin, Artem A.
Nelson, Jenny
author_sort Azzouzi, Mohammed
collection PubMed
description Achieving the simultaneous increases in the open circuit voltage (V(oc)), short circuit current (J(sc)) and fill factor (FF) necessary to further increase the power conversion efficiency (PCE) of organic photovoltaics (OPV) requires a unified understanding of how molecular and device parameters affect all three characteristics. In this contribution, we introduce a framework that for the first time combines different models that have been used separately to describe the different steps of the charge generation and collection processes in OPV devices: a semi-classical rate model for charge recombination processes in OPV devices, zero-dimensional kinetic models for the photogeneration process and exciton dissociation and one-dimensional semiconductor device models. Using this unified multi-scale model in conjunction with experimental techniques (time-resolved absorption spectroscopy, steady-state and transient optoelectronic measurements) that probe the various steps involved in charge generation we can shed light on how the energy offsets in a series of polymer: non-fullerene devices affect the charge carrier generation, collection, and recombination properties of the devices. We find that changing the energy levels of the donor significantly affects not only the transition rates between local-exciton (LE) and charge-transfer (CT) states, but also significantly changes the transition rates between CT and charge-separated (CS) states, challenging the commonly accepted picture of charge generation and recombination. These results show that in order to obtain an accurate picture of charge generation in OPV devices, a variety of different experimental techniques under different conditions in conjunction with a comprehensive model of processes occurring at different time-scales are required.
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spelling pubmed-89249602022-04-11 Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency Azzouzi, Mohammed Gallop, Nathaniel P. Eisner, Flurin Yan, Jun Zheng, Xijia Cha, Hyojung He, Qiao Fei, Zhuping Heeney, Martin Bakulin, Artem A. Nelson, Jenny Energy Environ Sci Chemistry Achieving the simultaneous increases in the open circuit voltage (V(oc)), short circuit current (J(sc)) and fill factor (FF) necessary to further increase the power conversion efficiency (PCE) of organic photovoltaics (OPV) requires a unified understanding of how molecular and device parameters affect all three characteristics. In this contribution, we introduce a framework that for the first time combines different models that have been used separately to describe the different steps of the charge generation and collection processes in OPV devices: a semi-classical rate model for charge recombination processes in OPV devices, zero-dimensional kinetic models for the photogeneration process and exciton dissociation and one-dimensional semiconductor device models. Using this unified multi-scale model in conjunction with experimental techniques (time-resolved absorption spectroscopy, steady-state and transient optoelectronic measurements) that probe the various steps involved in charge generation we can shed light on how the energy offsets in a series of polymer: non-fullerene devices affect the charge carrier generation, collection, and recombination properties of the devices. We find that changing the energy levels of the donor significantly affects not only the transition rates between local-exciton (LE) and charge-transfer (CT) states, but also significantly changes the transition rates between CT and charge-separated (CS) states, challenging the commonly accepted picture of charge generation and recombination. These results show that in order to obtain an accurate picture of charge generation in OPV devices, a variety of different experimental techniques under different conditions in conjunction with a comprehensive model of processes occurring at different time-scales are required. The Royal Society of Chemistry 2022-02-07 /pmc/articles/PMC8924960/ /pubmed/35419090 http://dx.doi.org/10.1039/d1ee02788c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Azzouzi, Mohammed
Gallop, Nathaniel P.
Eisner, Flurin
Yan, Jun
Zheng, Xijia
Cha, Hyojung
He, Qiao
Fei, Zhuping
Heeney, Martin
Bakulin, Artem A.
Nelson, Jenny
Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title_full Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title_fullStr Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title_full_unstemmed Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title_short Reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
title_sort reconciling models of interfacial state kinetics and device performance in organic solar cells: impact of the energy offsets on the power conversion efficiency
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8924960/
https://www.ncbi.nlm.nih.gov/pubmed/35419090
http://dx.doi.org/10.1039/d1ee02788c
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