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Updated: Oct 6, 2026

Well-aligned Vertically Oriented ZnO Nanorod Arrays and their Application in Inverted Small Molecule Solar Cells
Published on: April 25, 2018
Efficient and Robust Organic Solar Cells Enabled by Nanofibrillar Electron Transport Layer via Seed-Initiated
Lei Yang1,2, Yanan Wei3, Yanjie Sun3
1School of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering and Low-Carbon Technology, Tianjin University, Tianjin, China.
Abstract:
In organic solar cells (OSCs), the morphology of charge transport layers (CTLs) is as critical as that of the active layer, directly governing charge transport and collection efficiency as well as overall device performance. However, current CTL design predominantly focuses on molecular structure engineering, while systematic morphological control of CTLs remains largely underexplored. Herein, we report a seed-initiated epitaxial growth strategy to construct well-ordered fibrillar electron transport layers (ETLs) with tunable fiber lengths and narrow dispersity. This nanofiber-textured ETL provides dedicated pathways for efficient electron transport and extraction, while its enlarged contact area strengthens interlayer adhesion, improving both interfacial charge transport and mechanical integrity. Using this ETL, power conversion efficiencies of 20.6% in rigid binary OSCs and 19.1% in flexible ones are achieved. The nanofibrillar ETL also exhibits broad active layer compatibility, excellent thickness tolerance, and outstanding mechanical stability. This work provides new insights into ETL morphological engineering as a strategy to overcome interfacial bottlenecks, unlocking significant efficiency gains in OSCs.
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