Flow-enhanced solution printing of all-polymer solar cells

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Morphology control of solution coated solar cell materials presents a key challenge limiting their device performance and commercial viability. Here we present a new concept for controlling phase separation during solution printing using an all-polymer bulk heterojunction solar cell as a model system. The key aspect of our method lies in the design of fluid flow using a microstructured printing blade, on the basis of the hypothesis of flow-induced polymer crystallization. Our flow design resulted in a similar to 90% increase in the donor thin film crystallinity and reduced microphase separated donor and acceptor domain sizes. The improved morphology enhanced all metrics of solar cell device performance across various printing conditions, specifically leading to higher short-circuit current, fill factor, open circuit voltage and significantly reduced device-to-device variation. We expect our design concept to have broad applications beyond all-polymer solar cells because of its simplicity and versatility.
Publisher
NATURE PUBLISHING GROUP
Issue Date
2015-08
Language
English
Article Type
Article
Keywords

SEMICONDUCTOR THIN-FILMS; HYDRODYNAMICALLY INDUCED CRYSTALLIZATION; X-RAY-SCATTERING; ORGANIC SEMICONDUCTORS; BULK HETEROJUNCTIONS; EXCITON DIFFUSION; CASTING PROCESS; SHEAR-FLOW; PERFORMANCE; MORPHOLOGY

Citation

NATURE COMMUNICATIONS, v.6

ISSN
2041-1723
DOI
10.1038/ncomms8955
URI
http://hdl.handle.net/10203/207310
Appears in Collection
MS-Journal Papers(저널논문)
Files in This Item
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