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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Highly planar cross-conjugated alternating polymers with multiple conformational locks: synthesis, characterization and their field-effect properties
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Highly planar cross-conjugated alternating polymers with multiple conformational locks: synthesis, characterization and their field-effect properties

机译:具有多个构象锁的高度平面的交叉共轭交替聚合物:合成,表征及其场效应性质

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It is meaningful to explore new design principles for organic semiconductors. Herein, we have developed two cross-conjugated alternating polymers based on 1,2-di(thiophen-2-yl)ethane-1,2-dione (DTO), namely PDTO-C1 and PDTO-C3, and investigated their charge transport properties by fabricating field-effect transistors devices. Single crystal X-ray crystallography shows that non-covalent S center dot center dot center dot O and C-H center dot center dot center dot 0 interactions exist inside the DTO units. These non-covalent interactions in combination with the C-H center dot center dot center dot 0 interactions of the thiophene-flanked dithienothiophene units, acting as conformational locks, are beneficial for acquiring the planar backbone conformation. PDTO-C1 and PDTO-C3 possess broad absorption spectra and HOMO and LUMO energy levels of ca. -5.50 and-3.6 eV, respectively. The highest mobility of 0.54 cm(2) V-1 s(-1) was achieved in the PDTO-C3-based transistor devices, whereas PDTO-C1 affords a mobility of 0.22 cm(2) V-1 s(-1). Further thin film microstructure investigations indicate that both polymers can form highly-ordered lamellar packing with small pi-pi stacking distances down to 3.50 angstrom. These results demonstrate that the incorporation of cross-conjugation may be used as an additional design tactic for organic semiconductors to alter their optoelectronic properties.
机译:探索有机半导体的新设计原理很有意义。本文中,我们开发了两种基于1,2-二(噻吩-2-基)乙烷-1,2-二酮(DTO)的交叉共轭交替聚合物PDTO-C1和PDTO-C3,并研究了它们的电荷传输通过制造场效应晶体管器件来提高性能。单晶X射线晶体学表明,在DTO单元内部存在非共价的S中心点中心点中心点O和C-H中心点中心点中心点0相互作用。这些非共价相互作用与作为构象锁​​的噻吩侧翼的二噻吩并噻吩单元的C-H中心点中心点中心点0相互作用结合,对于获得平面骨架构象是有益的。 PDTO-C1和PDTO-C3具有较宽的吸收光谱,HOMO和LUMO的能级约为ca。 -5.50和-3.6 eV。在基于PDTO-C3的晶体管器件中实现了0.54 cm(2)V-1 s(-1)的最高迁移率,而PDTO-C1提供了0.22 cm(2)V-1 s(-1)的迁移率。 。进一步的薄膜微结构研究表明,两种聚合物都可以形成高度有序的层状堆积,且pi-pi堆积距离小至3.50埃。这些结果表明,交叉共轭的结合可以用作有机半导体改变其光电特性的另一种设计策略。

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