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Quantifying quasi-fermi level splitting and open-circuit voltage losses in highly efficient nonfullerene organic solar cells

  • The power conversion efficiency (PCE) of state-of-the-art organic solar cells is still limited by significant open-circuit voltage (V-OC) losses, partly due to the excitonic nature of organic materials and partly due to ill-designed architectures. Thus, quantifying different contributions of the V-OC losses is of importance to enable further improvements in the performance of organic solar cells. Herein, the spectroscopic and semiconductor device physics approaches are combined to identify and quantify losses from surface recombination and bulk recombination. Several state-of-the-art systems that demonstrate different V-OC losses in their performance are presented. By evaluating the quasi-Fermi level splitting (QFLS) and the V-OC as a function of the excitation fluence in nonfullerene-based PM6:Y6, PM6:Y11, and fullerene-based PPDT2FBT:PCBM devices with different architectures, the voltage losses due to different recombination processes occurring in the active layers, the transport layers, and at the interfaces are assessed. It isThe power conversion efficiency (PCE) of state-of-the-art organic solar cells is still limited by significant open-circuit voltage (V-OC) losses, partly due to the excitonic nature of organic materials and partly due to ill-designed architectures. Thus, quantifying different contributions of the V-OC losses is of importance to enable further improvements in the performance of organic solar cells. Herein, the spectroscopic and semiconductor device physics approaches are combined to identify and quantify losses from surface recombination and bulk recombination. Several state-of-the-art systems that demonstrate different V-OC losses in their performance are presented. By evaluating the quasi-Fermi level splitting (QFLS) and the V-OC as a function of the excitation fluence in nonfullerene-based PM6:Y6, PM6:Y11, and fullerene-based PPDT2FBT:PCBM devices with different architectures, the voltage losses due to different recombination processes occurring in the active layers, the transport layers, and at the interfaces are assessed. It is found that surface recombination at interfaces in the studied solar cells is negligible, and thus, suppressing the non-radiative recombination in the active layers is the key factor to enhance the PCE of these devices. This study provides a universal tool to explain and further improve the performance of recently demonstrated high-open-circuit-voltage organic solar cells.zeige mehrzeige weniger

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Verfasserangaben:Le Quang PhuongORCiD, Seyed Mehrdad HosseiniORCiDGND, Oskar J. SandbergORCiD, Yingping ZouORCiD, Han Young Woo, Dieter NeherORCiDGND, Safa ShoaeeORCiDGND
URN:urn:nbn:de:kobv:517-opus4-570018
DOI:https://doi.org/10.25932/publishup-57001
ISSN:1866-8372
Titel des übergeordneten Werks (Deutsch):Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe
Schriftenreihe (Bandnummer):Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe (1384)
Publikationstyp:Postprint
Sprache:Englisch
Datum der Erstveröffentlichung:19.11.2020
Erscheinungsjahr:2020
Veröffentlichende Institution:Universität Potsdam
Datum der Freischaltung:19.03.2024
Freies Schlagwort / Tag:nonfullerene acceptors; organic solar cells; quasi-Fermi level; quasi-steady-state photoinduced absorptions; recombinations; splitting; surface; voltage losses
Ausgabe:1
Aufsatznummer:2000649
Seitenanzahl:8
Quelle:Sol. RRL, 5: 2000649. https://doi.org/10.1002/solr.202000649
Fördernde Institution:Alexander von Humboldt FoundationAlexander von Humboldt Foundation; National Research Foundation (NRF) of KoreaNational Research Foundation; of Korea [2019R1A2C2085290, 2019R1A6A1A11044070]; Ser Cymru Program; through the European Regional Development Fund; Welsh European Funding; Office; Swansea University strategic initiative in Sustainable Advanced; Materials; Projekt DEAL
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer Review:Referiert
Publikationsweg:Open Access / Green Open-Access
Lizenz (Deutsch):License LogoCC-BY - Namensnennung 4.0 International
Externe Anmerkung:Bibliographieeintrag der Originalveröffentlichung/Quelle
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