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  4. Tuning Surface Defect States in Sputtered Titanium Oxide Electron Transport Layers for Enhanced Stability of Organic Photovoltaics
 
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2024
Journal Article
Title

Tuning Surface Defect States in Sputtered Titanium Oxide Electron Transport Layers for Enhanced Stability of Organic Photovoltaics

Abstract
Nonfullerene acceptors (NFAs) have dramatically improved the power conversion efficiency (PCE) of organic photovoltaics (OPV) in recent years; however, their device stability currently remains a bottleneck for further technological progress. Photocatalytic decomposition of nonfullerene acceptor molecules at metal oxide electron transport layer (ETL) interfaces has in several recent reports been demonstrated as one of the main degradation mechanisms for these high-performing OPV devices. While some routes for mitigating such degradation effects have been proposed, e.g., through a second layer integrated on the ETL surface, no clear strategy that complies with device scale-up and application requirements has been presented to date. In this work, it is demonstrated that the development of sputtered titanium oxide layers as ETLs in nonfullerene acceptor based OPV can lead to significantly enhanced device lifetimes. This is achieved by tuning the concentration of defect states at the oxide surface, via the reactive sputtering process, to mitigate the photocatalytic decomposition of NFA molecules at the metal oxide interlayers. Reduced defect state formation at the oxide surface is confirmed through X-ray photoelectron spectroscopy (XPS) studies, while the reduced photocatalytic decomposition of nonfullerene acceptor molecules is confirmed via optical spectroscopy investigations. The PBDB-T:ITIC organic solar cells show power conversion efficiencies of around 10% and significantly enhanced photostability. This is achieved through a reactive sputtering process that is fully scalable and industry compatible.
Author(s)
Ahmadpour, Mehrad
SDU Climate Cluster, University of Southern Denmark
Ahmad, Mariam
SDU Climate Cluster, University of Southern Denmark
Prete, Michaela
SDU Climate Cluster, University of Southern Denmark
Lundsgaard Hansen, John
Department of Physics and Astronomy/Interdisciplinary Nanoscience Center
Miakota, Denys I.
Greenbank, William
University of Southern Denmark, Centre for Industrial Electronics, Department of Mechanical and Electrical Engineering
Zheng, Yunlin Jacques
UMR CNRS 7588, Institut des Nanosciences de Paris
Top, Michiel  
Fraunhofer-Institut für Organische Elektronik, Elektronenstrahl- und Plasmatechnik FEP  
Ebel, Thomas
University of Southern Denmark, Centre for Industrial Electronics, Department of Mechanical and Electrical Engineering
Rubahn, Horst-Günter
University of Southern Denmark, SDU NanoSYD
Engmann, Vida
University of Southern Denmark, Mads Clausen Institute, Center for Advanced Photovoltaics and Thin Film Energy Devices (SDU CAPE)
Canulescu, Stela
Technical University of Denmark, Department of Electrical and Photonics Engineering
Witkowski, Nadine
UMR CNRS 7588, Institut des Nanosciences de Paris
Madsen, Morten
SDU Climate Cluster, University of Southern Denmark
Journal
ACS applied materials & interfaces  
DOI
10.1021/acsami.4c00056
Language
English
Fraunhofer-Institut für Organische Elektronik, Elektronenstrahl- und Plasmatechnik FEP  
Keyword(s)
  • organic photovoltaics

  • nonfullerene acceptors

  • oxide defect states

  • electron transport layers

  • titanium oxide

  • reactive sputtering

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