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Heteroheptacenes with fused thiophene and pyrrole rings

机译:具有稠合噻吩和吡咯环的杂庚二酮

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摘要

The preparation of conjugated heteroheptacenes using an electrophilic coupling reaction induced by a super acid is reported. The new molecules containing thiophene and/or pyrrole rings are bisbenzo[b,b']thienodithieno[3,2-b:2',3'-d]pyrrole, bisbenzo[b,b']thienocyclopenta[2, l-b:3,4-b']dithiophene, and bisthieno[3,2no]thieno[2,3-f:5,4-f]carbazole. Dithieno[3,2-b:2',3'-d] pyrrole, cyclopenta[2,lb:3,4-b']dithiophene, and carbazole are used as the aromatic cores. This versatility provides access to molecules with systematically controllable physicochemical properties. Single-crystal X-ray analyses demonstrate that the type and position of the alkyl substituents significantly changes the packing properties of the new molecules. The optical and optoelectronic properties of the heteroheptacenes vary considerably depending on the number and position of the sulfur or nitrogen linkages and reveal the improved environmental stability over their hydrocarbon counterparts. The analysis of the experimental results from UV/Vis absorption/photoluminescence (PL) spectroscopy and cyclic voltammetry were combined with DFT quantum-chemical calculations and compared with other model heteroheptacenes. The results suggest that among the acenes with the same number of fused rings, the thiophene ring fusion inside the skeleton stabilizes both HOMO and LUMO levels more effectively than pyrrole and benzene rings. The present study also shows that the new heteroheptacenes are promising candidates for the construction of electronic materials.
机译:报道了使用由超强酸诱导的亲电偶联反应制备共轭杂庚烯的方法。含有噻吩和/或吡咯环的新分子是双苯并[b,b']噻二噻吩并[3,2-b:2',3'-d]吡咯,双苯并[b,b']噻吩并环戊[2,lb:3 ,4-b']二噻吩和双铋[3,2no]噻吩并[2,3-f:5,4-f]咔唑。二噻吩并[3,2-b:2′,3′-d]吡咯,环戊[2,lb:3,4-b′]二噻吩和咔唑用作芳族核。这种多功能性使人们可以接近具有系统可控的物理化学性质的分子。 X射线单晶分析表明,烷基取代基的类型和位置显着改变了新分子的堆积特性。异庚烯的光学和光电性质根据硫或氮键的数量和位置而有很大不同,并且显示出优于其烃对应物的环境稳定性。将来自UV / Vis吸收/光致发光(PL)光谱和循环伏安法的实验结果分析与DFT量子化学计算相结合,并与其他模型异庚炔进行了比较。结果表明,在具有相同稠合环数的并苯中,骨架内部的噻吩环稠合比吡咯和苯环更有效地稳定HOMO和LUMO含量。本研究还表明,新的异庚烯是有望用于电子材料构建的候选物。

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