Bridging the lab-to-fab gap in non-fullerene organic solar cells via gravure printing

Fuente: arXiv
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Hauptverfasser: Taranenko, Svitlana, Wang, Chen, Holzner, David, Eland, Robert, Wöpke, Christopher, Seiler, Toni, Ehm, Alexander, Piane, Fabio Le, Mackenzie, Roderick C. I., Zahn, Dietrich R. T., Deibel, Carsten, Hübler, Arved Carl, Saladina, Maria
Format: Preprint
Veröffentlicht: 2026
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author Taranenko, Svitlana
Wang, Chen
Holzner, David
Eland, Robert
Wöpke, Christopher
Seiler, Toni
Ehm, Alexander
Piane, Fabio Le
Mackenzie, Roderick C. I.
Zahn, Dietrich R. T.
Deibel, Carsten
Hübler, Arved Carl
Saladina, Maria
author_facet Taranenko, Svitlana
Wang, Chen
Holzner, David
Eland, Robert
Wöpke, Christopher
Seiler, Toni
Ehm, Alexander
Piane, Fabio Le
Mackenzie, Roderick C. I.
Zahn, Dietrich R. T.
Deibel, Carsten
Hübler, Arved Carl
Saladina, Maria
contents Organic solar cells have reached record efficiencies with non-fullerene acceptors, yet their translation to industrial printing remains a critical bottleneck. Here we report the highest efficiency achieved for a fully roll-to-roll-compatible gravure-printed non-fullerene organic solar cell. High-performance blends are typically optimised under laboratory coating conditions, while roll-to-roll manufacturing imposes fundamentally different constraints on ink stability, drying dynamics, and multilayer integration. Whether these constraints intrinsically limit device physics has remained unresolved. Here, we demonstrate a gravure-printed PM6:Y12 solar cell architecture using commercially available materials and establish a quantitative framework that disentangles optical, recombination, and transport losses in printed devices. We find that favourable bulk morphology and exciton harvesting can be preserved under gravure printing and non-halogenated solvents. The dominant efficiency penalties arise instead from optical interference within the printed layer stack and slow charge transport. Our results demonstrate that the performance gap between laboratory and printed solar cells is originating from device architecture rather than the intrinsic physics of modern non-fullerene systems, providing a mechanistic roadmap for roll-to-roll manufacturing of non-fullerene solar cells.
format Preprint
id arxiv_https___arxiv_org_abs_2603_06827
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Bridging the lab-to-fab gap in non-fullerene organic solar cells via gravure printing
Taranenko, Svitlana
Wang, Chen
Holzner, David
Eland, Robert
Wöpke, Christopher
Seiler, Toni
Ehm, Alexander
Piane, Fabio Le
Mackenzie, Roderick C. I.
Zahn, Dietrich R. T.
Deibel, Carsten
Hübler, Arved Carl
Saladina, Maria
Materials Science
Organic solar cells have reached record efficiencies with non-fullerene acceptors, yet their translation to industrial printing remains a critical bottleneck. Here we report the highest efficiency achieved for a fully roll-to-roll-compatible gravure-printed non-fullerene organic solar cell. High-performance blends are typically optimised under laboratory coating conditions, while roll-to-roll manufacturing imposes fundamentally different constraints on ink stability, drying dynamics, and multilayer integration. Whether these constraints intrinsically limit device physics has remained unresolved. Here, we demonstrate a gravure-printed PM6:Y12 solar cell architecture using commercially available materials and establish a quantitative framework that disentangles optical, recombination, and transport losses in printed devices. We find that favourable bulk morphology and exciton harvesting can be preserved under gravure printing and non-halogenated solvents. The dominant efficiency penalties arise instead from optical interference within the printed layer stack and slow charge transport. Our results demonstrate that the performance gap between laboratory and printed solar cells is originating from device architecture rather than the intrinsic physics of modern non-fullerene systems, providing a mechanistic roadmap for roll-to-roll manufacturing of non-fullerene solar cells.
title Bridging the lab-to-fab gap in non-fullerene organic solar cells via gravure printing
topic Materials Science
url https://arxiv.org/abs/2603.06827