TY - JOUR
T1 - Durable Ultraflexible Organic Photovoltaics with Novel Metal-Oxide-Free Cathode
AU - Jiang, Zhi
AU - Fukuda, Kenjiro
AU - Huang, Wenchao
AU - Park, Sungjun
AU - Nur, Roda
AU - Nayeem, Md Osman Goni
AU - Yu, Kilho
AU - Inoue, Daishi
AU - Saito, Masahiko
AU - Kimura, Hiroki
AU - Yokota, Tomoyuki
AU - Umezu, Shinjiro
AU - Hashizume, Daisuke
AU - Osaka, Itaru
AU - Takimiya, Kazuo
AU - Someya, Takao
PY - 2019/2/8
Y1 - 2019/2/8
N2 - Flexible and stretchable organic photovoltaics (OPVs) are promising as a power source for wearable devices with multifunctions ranging from sensing to locomotion. Achieving mechanical robustness and high power conversion efficiency for ultraflexible OPVs is essential for their successful application. However, it is challenging to simultaneously achieve these features by the difficulty to maintain stable performance under a microscale bending radius. Ultraflexible OPVs are proposed by employing a novel metal-oxide-free cathode that consists of a printed ultrathin metallic transparent electrode and an organic electron transport layer to achieve high electron-collecting capabilities and mechanical robustness. In fact, the proposed ultraflexible OPV achieves a power conversion efficiency of 9.7% and durability with 74% efficiency retention after 500 cycles of deformation at 37% compression through buckling. The proposed approach can be applied to active layers with different morphologies, thus suggesting its universality and potential for high-performance ultraflexible OPV devices.
AB - Flexible and stretchable organic photovoltaics (OPVs) are promising as a power source for wearable devices with multifunctions ranging from sensing to locomotion. Achieving mechanical robustness and high power conversion efficiency for ultraflexible OPVs is essential for their successful application. However, it is challenging to simultaneously achieve these features by the difficulty to maintain stable performance under a microscale bending radius. Ultraflexible OPVs are proposed by employing a novel metal-oxide-free cathode that consists of a printed ultrathin metallic transparent electrode and an organic electron transport layer to achieve high electron-collecting capabilities and mechanical robustness. In fact, the proposed ultraflexible OPV achieves a power conversion efficiency of 9.7% and durability with 74% efficiency retention after 500 cycles of deformation at 37% compression through buckling. The proposed approach can be applied to active layers with different morphologies, thus suggesting its universality and potential for high-performance ultraflexible OPV devices.
KW - extreme mechanical durability
KW - high PCE
KW - metal-oxide-free cathode
KW - ultraflexible organic photovoltaics
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U2 - 10.1002/adfm.201808378
DO - 10.1002/adfm.201808378
M3 - Article
AN - SCOPUS:85058708367
VL - 29
JO - Advanced Functional Materials
JF - Advanced Functional Materials
SN - 1616-301X
IS - 6
M1 - 1808378
ER -