Department of Applied Chemistry, Graduate School of Engineering, Hiroshima University, 1-4-1 Kagamiyama, Higashi-Hiroshima, Hiroshima 739-8527, Japan.
J Am Chem Soc. 2012 Feb 22;134(7):3498-507. doi: 10.1021/ja210687r. Epub 2012 Feb 9.
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.
我们报告了一种新型给体-受体半导体聚合物的合成与表征,该聚合物含有萘并双噻二唑(NTz)、双苯并噻二唑(BTz)稠合环,以及其在有机场效应晶体管和体异质结太阳能电池中的应用。由于 NTz 具有高度扩展的π 结构和强电子亲和力,基于 NTz 的聚合物(PNTz4T)的带隙比基于 BTz 的聚合物(PBTz4T)更小,HOMO 能级更深。PNTz4T 不仅表现出高场效应迁移率(~0.56 cm²/(V s)),而且具有高光光伏性能,功率转换效率约为 6.3%,与 PBTz4T 相比,这两个性能都显著提高。这很可能是由于 PNTz4T 在薄膜中具有更合适的电子性质,更重要的是比 PBTz4T 具有更高的有序结构,这可能源于核心之间的不同对称性。NTz 具有中心对称性,在本聚合物体系中可以导致更线性的主链,而 BTz 具有轴对称性,这可能有利于更好的分子有序性。这些结果表明,NTz 作为高性能半导体聚合物的构建单元,在晶体管和太阳能电池方面具有很大的应用潜力。