Molecular aggregation-performance relationship in the design of novel cyclohexylethynyl end-capped quaterthiophenes for solution-processed organic transistors
- Authors
- An, Tae Kyu; Hahn, Seung-Hoon; Nam, Sooji; Cha, Hyojung; Rho, Yecheol; Chung, Dae Sung; Ree, Moonhor; Kang, Moon Seong; Kwon, Soon-Ki; Kim, Yun-Hi; Park, Chan Eon
- Issue Date
- Mar-2013
- Publisher
- Elsevier BV
- Keywords
- Organic thin film transistor (OTFT); Mixed solvent; Organic semiconductor; Morphology; Fused acene; Crystallinity
- Citation
- Dyes and Pigments, v.96, no.3, pp 756 - 762
- Pages
- 7
- Indexed
- SCI
SCIE
SCOPUS
- Journal Title
- Dyes and Pigments
- Volume
- 96
- Number
- 3
- Start Page
- 756
- End Page
- 762
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/20786
- DOI
- 10.1016/j.dyepig.2012.11.018
- ISSN
- 0143-7208
1873-3743
- Abstract
- The synthesis and characterization of cyclohexylethenyl end-capped quaterthiophenes is reported. Additionally, an investigation of the performance of organic field-effect transistors based on these quaterthiophenes in view of the relationship between the solid-state (or aggregate) order and the electronic performance is described. UV-vis absorption measurements revealed that the quaterthiophene with an asymmetrically substituted cyclohexylethynyl end-group induced the formation of H-type aggregates, whereas the quaterthiophene with a symmetrically substituted cyclohexylethynyl end-groups favored the formation of J-type aggregates. Two-dimensional grazing-incidence wide-angle X-ray scattering studies were performed to support the molecular structure-dependent packing of films of the new quaterthiophenes. Solution-processed quaterthiophenes were tested as the active layers of p-type organic field-effect transistors with a bottom gate/top contact geometry. The field-effect mobility of devices that incorporated asymmetric quaterthiophene molecules was quite high, exceeding 0.02 cm(2)/V s, due to H-aggregation and good in-plane ordering. In contrast, the field-effect mobility of devices that incorporated symmetrical quaterthiophenes, was low, above 5 x 10(-4) cm(2)/(V s), due to the formation of J-aggregates and poor in-plane ordering. A comparison of the symmetrical and asymmetrical quaterthiophene derivatives revealed that the molecular aggregation-dependent packing, determined by the cyclohexylethynyl end groups, was responsible for influencing the organic field-effect transistor performance. (C) 2012 Elsevier Ltd. All rights reserved.
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