TY - JOUR
T1 - Thiophene-diazine molecular semiconductors
T2 - Synthesis, structural, electrochemical, optical, and electronic structural properties; Implementation in organic field-effect transistors
AU - Ortiz, Rocío Ponce
AU - Casado, Juan
AU - Hernández, Víctor
AU - Navarrete, Juan T López
AU - Letizia, Joseph A.
AU - Ratner, Mark A.
AU - Facchetti, Antonio
AU - Marks, Tobin J.
PY - 2009/5/11
Y1 - 2009/5/11
N2 - The synthesis, structural, electrochemical, optical, and electronic structure properties of a new azinethiophene semiconductor family are reported and compared to those of analogous oligothiophenes. The new molecules are: 5,5′-bis(6-(thien-2-yl)pyrimid-4-yl)-2,2′-dithiophene (1), 5,5′-bis(6-(5-hexylthien-2-yl)pyrimid-4-yl)-2,2′-dithiophene (3), and 5,5′-bis(6-(thien-2-yl)pyridazin-3-yl))-2,2′-dithiophene (2). Electrochemical experiments demonstrate that introduction of electron-poor heteroaromatic rings into the oligothiophene core significantly enhances electron affinity. Thin-film transistors were fabricated with these materials and evaluated both in vacuum and in air. We find that although diazine substitution is important in tuning oligothiophene orbital energetics, these oligomers are p-channel semiconductors and the field-effect transistor (FET) charge transport properties are remarkably similar to these of unsubstituted oligothiophenes. The combined computational-experimental analysis of the molecular and thin film properties indicates that these diazine-containing oligothiophenes essentially behave as π-extended bithiophenes. Interestingly, despite strong intermolecular interactions, high solid-state fluorescence efficiencies are observed for these new derivatives. Such emission characteristics suggest that these materials behave as more extended π systems, which should be advantageous in light-emitting transistors.
AB - The synthesis, structural, electrochemical, optical, and electronic structure properties of a new azinethiophene semiconductor family are reported and compared to those of analogous oligothiophenes. The new molecules are: 5,5′-bis(6-(thien-2-yl)pyrimid-4-yl)-2,2′-dithiophene (1), 5,5′-bis(6-(5-hexylthien-2-yl)pyrimid-4-yl)-2,2′-dithiophene (3), and 5,5′-bis(6-(thien-2-yl)pyridazin-3-yl))-2,2′-dithiophene (2). Electrochemical experiments demonstrate that introduction of electron-poor heteroaromatic rings into the oligothiophene core significantly enhances electron affinity. Thin-film transistors were fabricated with these materials and evaluated both in vacuum and in air. We find that although diazine substitution is important in tuning oligothiophene orbital energetics, these oligomers are p-channel semiconductors and the field-effect transistor (FET) charge transport properties are remarkably similar to these of unsubstituted oligothiophenes. The combined computational-experimental analysis of the molecular and thin film properties indicates that these diazine-containing oligothiophenes essentially behave as π-extended bithiophenes. Interestingly, despite strong intermolecular interactions, high solid-state fluorescence efficiencies are observed for these new derivatives. Such emission characteristics suggest that these materials behave as more extended π systems, which should be advantageous in light-emitting transistors.
KW - Density functional calculations
KW - Electrochemistry
KW - P-type mobility
KW - Semiconductors transistors
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U2 - 10.1002/chem.200802424
DO - 10.1002/chem.200802424
M3 - Article
C2 - 19253316
AN - SCOPUS:66149131417
SN - 0947-6539
VL - 15
SP - 5023
EP - 5039
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 20
ER -