TY - JOUR
T1 - Synthesis, characterization, and transistor and solar cell applications of a naphthobisthiadiazole-based semiconducting polymer
AU - Osaka, Itaru
AU - Shimawaki, Masafumi
AU - Mori, Hiroki
AU - Doi, Iori
AU - Miyazaki, Eigo
AU - Koganezawa, Tomoyuki
AU - Takimiya, Kazuo
PY - 2012/2/22
Y1 - 2012/2/22
N2 - We report the synthesis and characterization of a novel donor-acceptor semiconducting polymer bearing naphthobisthiadiazole (NTz), a doubly benzothiadiazole (BTz)-fused ring, and its applications to organic field-effect transistors and bulk heterojunction solar cells. With NTz's highly π-extended structure and strong electron affinity, the NTz-based polymer (PNTz4T) affords a smaller bandgap and a deeper HOMO level than the BTz-based polymer (PBTz4T). PNTz4T exhibits not only high field-effect mobilities of ∼0.56 cm 2/(V s) but also high photovoltaic properties with power conversion efficiencies of ∼6.3%, both of which are significantly high compared to those for PBTz4T. This is most likely due to the more suitable electronic properties and, importantly, the more highly ordered structure of PNTz4T in the thin film than that of PBTz4T, which might originate in the different symmetry between the cores. NTz, with centrosymmetry, can lead to a more linear backbone in the present polymer system than BTz with axisymmetry, which might be favorable for better molecular ordering. These results demonstrate great promise for using NTz as a bulding unit for high-performance semiconducting polymers for both transistors and solar cells.
AB - We report the synthesis and characterization of a novel donor-acceptor semiconducting polymer bearing naphthobisthiadiazole (NTz), a doubly benzothiadiazole (BTz)-fused ring, and its applications to organic field-effect transistors and bulk heterojunction solar cells. With NTz's highly π-extended structure and strong electron affinity, the NTz-based polymer (PNTz4T) affords a smaller bandgap and a deeper HOMO level than the BTz-based polymer (PBTz4T). PNTz4T exhibits not only high field-effect mobilities of ∼0.56 cm 2/(V s) but also high photovoltaic properties with power conversion efficiencies of ∼6.3%, both of which are significantly high compared to those for PBTz4T. This is most likely due to the more suitable electronic properties and, importantly, the more highly ordered structure of PNTz4T in the thin film than that of PBTz4T, which might originate in the different symmetry between the cores. NTz, with centrosymmetry, can lead to a more linear backbone in the present polymer system than BTz with axisymmetry, which might be favorable for better molecular ordering. These results demonstrate great promise for using NTz as a bulding unit for high-performance semiconducting polymers for both transistors and solar cells.
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U2 - 10.1021/ja210687r
DO - 10.1021/ja210687r
M3 - Article
C2 - 22280564
AN - SCOPUS:84857424718
SN - 0002-7863
VL - 134
SP - 3498
EP - 3507
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 7
ER -