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The Impact of Device Polarity on the Performance of Polymer-Fullerene Solar Cells

Author
Abstract

Diketopyrrolopyrrole (DPP)-conjugated polymers are a versatile class of semiconductors for application in organic solar cells because of their tunable optoelectronic properties. A record power conversion efficiency (PCE) of 9.4% was recently achieved for DPP polymers, but further improvements are required to reach true efficiency limits. Using five DPP polymers with different chemical structures and molecular weights, the device performance of polymer:fullerene solar cells is systematically optimized by considering device polarity, morphology, and light absorption. The polymer solubility is found to have a significant effect on the optimal device polarity. Soluble polymers show a 10-25% increase in PCE in inverted device configurations, while the device performance is independent of device polarity for less soluble DPP derivatives. The difference seems related to the polymer to fullerene weight ratio at the ZnO interface in inverted devices, which is higher for more soluble DPP polymers. Optimization of the nature of the cosolvent to narrow the fibril width of polymers in the blends toward the exciton diffusion length enhances charge generation. Additionally, the use of a retroreflective foil increases absorption of light. Combined, the effects afford a PCE of 9.6%, among the highest for DPP-based polymer solar cells. c.2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Year of Publication
2018
Journal
Advanced Energy Materials
Volume
8
Issue
22
Number of Pages
1800550
DOI
10.1002/aenm.201800550
PId
20bad15d010666cba4eefe6498d5cb90
Alternate Journal
Adv. Energy Mater.
Label
OA
Journal Article
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