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Kim, BongSoo
Polymer & Organic Semiconductor Lab.
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Achieving an excellent efficiency of 11.57% in a polymer solar cell submodule with a 55 cm2 active area using 1D/2A terpolymers and environmentally friendly nonhalogenated solvents

Author(s)
Jung, HyeonwooKim, JongyounPark, JaehyoungJahankhan, MuhammadHwang, YoungjunKang, ByeongjaeKim, HyerinPark, Ho-YeolAhn, PyeongkangUm, DuhyeonJee, Je-SungShin, Won SukKim, BongsooJin, Sung-HoSong, Chang EunLee, Youngu
Issued Date
2024-01
DOI
10.1002/eom2.12421
URI
https://scholarworks.unist.ac.kr/handle/201301/67126
Citation
ECOMAT, v.6, no.1, pp.e12421
Abstract
The transition of polymer solar cells (PSCs) from laboratory-scale unit cells to industrial-scale modules requires the development of new p-type polymers for high-performance large-area PSC modules based on environmentally friendly processes. Herein, a series of 1D/2A terpolymers (PBTPttBD) composed of benzo[1,2-b:4,5-b']dithiophene (BDT-F), thieno[3,4-c]pyrrole-4,6(5H)-dione (TPD-TT), and benzo-[1,2-c:4,5-c']dithiophene-4,8-dione (BDD) is synthesized for nonhalogenated solvent processed PSC submodules. The optical, electrochemical, charge-transport, and nano-morphological properties of the PBTPttBD terpolymers are modulated by adjusting the molar ratio of the TPD-TT and BDD components. PBTPttBD-75:BTP-eC11-based PSC submodules, processed with o-xylene, achieve a notable PCE of 11.57% over a 55 cm(2 ) active area. This PCE value is among the highest reported using a nonhalogenated solvent over a 55 cm(2 )active area module. The optimized PSC submodule exhibits minimal cell-to-module loss, which can be attributed to the optimized crystallinity of the PBTPttBD-75:BTP-eC11 photoactive layer system and favorable film formation kinetics.image
Publisher
WILEY
ISSN
2567-3173
Keyword (Author)
cell-to-module lossnonhalogenated solventspolymer solar cellssubmodulesterpolymers
Keyword
ORGANIC PHOTOVOLTAICSBENZODITHIOPHENE

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