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Vacuum-free fabrication of organic solar cell on assembled glass substrates.

Authors :
Yang, Hao-Chun
Zha, Wusong
Weng, Chia-Ning
Chen, Chao-Hsuan
Zan, Hsiao-Wen
Su, Kuan-Wei
Luo, Qun
Ma, Chang-Qi
Chao, Yu-Chiang
Meng, Hsin-Fei
Source :
Optical Materials. Feb2021, Vol. 112, pN.PAG-N.PAG. 1p.
Publication Year :
2021

Abstract

Vacuum-free fabrication is essential to realize large-scale production of organic solar cells. Blade-coating and printing are important solution-processing techniques to realize this idea. Preparation devices on large substrates is important for mass production; however, it is not easy to handle large substrates during fabrication procedures. In this work, we demonstrate a fabrication method for all-solution vacuum-free organic solar cells on an assembled glass substrates. Small pieces of glasses were assembled into a mosaic of larger total size for device fabrication. A gap-prefilling method was also developed to realize uniform thickness distribution. For the device with blade-coated ZnO electron transport layer, blade-coated active layer, spray-coated hole transport layer and spray-coated top electrode, power conversion efficiency of 4.19% is obtained. This showed that, by combining spray and blade coating, ultimate scale of the vacuum-free fabrication of OPV on glass substrate will not be limited by the substrate size itself, and can be scaled up to multi-meter by assembling the glasses into a mosaic. A method for all-solution vacuum-free organic solar cells on an assembled glass substrates were developed. Devices fabricated by blade-coating and spray-coating with power conversion efficiency of 4.19% was obtained. Image 1 • ‧A technique for all-solution vacuum-free organic solar cells on an assembled glass substrates is presented. • ‧A gap-prefilling method was also developed to realize uniform thickness distribution. • ‧Power conversion efficiency of 4.19% is obtained for the device with blade-coated PEDOT:PSS, blade-coated active layer, spray-coated hole transport layer and spray-coated top electrode. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09253467
Volume :
112
Database :
Academic Search Index
Journal :
Optical Materials
Publication Type :
Academic Journal
Accession number :
148729460
Full Text :
https://doi.org/10.1016/j.optmat.2020.110683