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Revealing the doping density in perovskite solar cells and its impact on device performance

  • Traditional inorganic semiconductors can be electronically doped with high precision. Conversely, there is still conjecture regarding the assessment of the electronic doping density in metal-halide perovskites, not to mention of a control thereof. This paper presents a multifaceted approach to determine the electronic doping density for a range of different lead-halide perovskite systems. Optical and electrical characterization techniques, comprising intensity-dependent and transient photoluminescence, AC Hall effect, transfer-length-methods, and charge extraction measurements were instrumental in quantifying an upper limit for the doping density. The obtained values are subsequently compared to the electrode charge per cell volume under short-circuit conditions ( CUbi/eV), which amounts to roughly 10(16) cm(-3). This figure of merit represents the critical limit below which doping-induced charges do not influence the device performance. The experimental results consistently demonstrate that the doping density is below this criticalTraditional inorganic semiconductors can be electronically doped with high precision. Conversely, there is still conjecture regarding the assessment of the electronic doping density in metal-halide perovskites, not to mention of a control thereof. This paper presents a multifaceted approach to determine the electronic doping density for a range of different lead-halide perovskite systems. Optical and electrical characterization techniques, comprising intensity-dependent and transient photoluminescence, AC Hall effect, transfer-length-methods, and charge extraction measurements were instrumental in quantifying an upper limit for the doping density. The obtained values are subsequently compared to the electrode charge per cell volume under short-circuit conditions ( CUbi/eV), which amounts to roughly 10(16) cm(-3). This figure of merit represents the critical limit below which doping-induced charges do not influence the device performance. The experimental results consistently demonstrate that the doping density is below this critical threshold 10(12) cm(-3), which means << CUbi / e V) for all common lead-based metal-halide perovskites. Nevertheless, although the density of doping-induced charges is too low to redistribute the built-in voltage in the perovskite active layer, mobile ions are present in sufficient quantities to create space-charge-regions in the active layer, reminiscent of doped pn-junctions. These results are well supported by drift-diffusion simulations, which confirm that the device performance is not affected by such low doping densities.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Francisco Pena-CamargoORCiD, Jarla ThiesbrummelORCiD, Hannes HempelORCiD, Artem Musiienko, Vincent M. Le Corre, Jonas DiekmannORCiD, Jonathan Warby, Thomas Unold, Felix LangORCiDGND, Dieter NeherORCiDGND, Martin StolterfohtORCiD
DOI:https://doi.org/10.1063/5.0085286
ISSN:1931-9401
Titel des übergeordneten Werks (Englisch):Applied physics reviews
Verlag:AIP Publishing
Verlagsort:Melville
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:29.04.2022
Erscheinungsjahr:2022
Datum der Freischaltung:17.05.2024
Band:9
Ausgabe:2
Aufsatznummer:021409
Seitenanzahl:11
Fördernde Institution:Deutsche Forschungsgemeinschaft (DFG, German Research Foundation); [498155101]; Federal Ministry for Economic Affairs and Energy [P3T-HOPE,; 03EE1017C]; (Helmholtz-Zentrum Berlin fuuml;r Materialien und Energie);; Rank Prize fund; Alexander von Humboldt Foundation via the Feodor Lynen; program; German Science Foundation (DFG) [SPP 2196]
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer Review:Referiert
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