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Solvent-Resistant Organic Transistors and Thermally Stable Organic Photovoltaics Based on Cross-linkable Conjugated Polymers SCIE SCOPUS

Title
Solvent-Resistant Organic Transistors and Thermally Stable Organic Photovoltaics Based on Cross-linkable Conjugated Polymers
Authors
Hyeong Jun KimA-Reum HanChul-Hee ChoHyunbum KangHan-Hee ChoMoo Yeol LeeJean M. J. FréchetOh, JHBumjoon J. Kim
Date Issued
2012-01-10
Publisher
American Chemical Society
Abstract
Conjugated polymers, in general, are unstable when exposed to air, solvent, or thermal treatment, and these challenges limit their practical applications. Therefore, it is of great importance to develop new materials or methodologies that can enable organic electronics with air stability, solvent resistance, and thermal stability. Herein, we have developed a simple but powerful approach to achieve solvent-resistant and thermally stable organic electronic devices with a remarkably improved air stability, by introducing an azide cross-linkable group into a conjugated polymer. To demonstrate this concept, we have synthesized polythiophene with azide groups attached to end of the alkyl chain (P3HT-azide). Photo-cross-linking of P3HT-azide copolymers dramatically improves the solvent resistance of the active layer without disrupting the molecular ordering and charge transport. This is the first demonstration of solvent-resistant organic transistors. Furthermore, the bulk-heterojunction organic photovoltaics (BHJ OPVs) containing P3HT-azide copolymers show an average efficiency higher than 3.3% after 40 h annealing at an elevated temperature of 150 C, which represents one of the most thermally stable OPV devices reported to date. This enhanced stability is due to an in situ compatibilizer that forms at the P3HT/PCBM interface and suppresses macrophase separation. Our approach paves a way toward organic electronics with robust and stable operations.
Keywords
FIELD-EFFECT TRANSISTORS; SOLAR-CELLS; IN-SITU; MORPHOLOGICAL STABILIZATION; DIBLOCK COPOLYMER; FACILE SYNTHESIS; HIGH-MOBILITY; PERFORMANCE; EFFICIENT; NANOPARTICLES
URI
https://oasis.postech.ac.kr/handle/2014.oak/14381
DOI
10.1021/CM203058P
ISSN
0897-4756
Article Type
Article
Citation
CHEMISTRY OF MATERIALS, vol. 24, no. 1, page. 215 - 221, 2012-01-10
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오준학OH, JOON HAK
Dept. of Chemical Enginrg
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