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Thieno3,2-bthiophene based conjugated polymers for high performance organic photovoltaic and field effect transistor applications

机译:Thieno 3,2-b噻吩基共轭聚合物,用于高性能有机光伏和场效应晶体管应用

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摘要

The design, synthesis and characterisation of thirteen new semiconducting polymers for use in organic photovoltaic (OPV) and field effect transistor (OFET) devices are reported. The rational design of each polymer is discussed and their structures related to their varying chemical and physical properties, which are further used to rationalise the specific device performances. Various structural modifications are investigated with a focus on the electron-deficient bis-lactam structures diketopyrrolopyrrole (DPP) and isoindigo, that are flanked by thieno[3,2-b]thiophene donor groups. udAlkyl chain optimisation of thieno[3,2-b]thiophene diketopyrrolopyrrole (DPPTT) based co-polymers was thoroughly examined and it was found that increased alkyl chain size affords improved solubility and a wider range of accessible co-monomer units. Exploiting this improved solubility, the new DPPTT-T polymer was fractionated using recycling gel permeation chromatography (GPC). This gave fractions with increased molecular weights and narrowed mass distributions resulting in OPV power conversion efficiency (PCE) ehancements of greater than 50 %. Continuing with DPPTT-T alkyl chains, a new OPV structural design consideration is introduced in which the alkyl chain branching position is systematically moved further from the polymer backbone. This resulted in higher molecular weight polymers with stronger π - π interactions and significantly enhanced device performances due to increased intermolecular interactions, with PCEs in excess of 8 %. Using the new higher performing branched alkyl chains the role of differing chalcogenophene co-monomers OPV devices was also investigated and was found that increased heteroatomic size, from thiophene to selenophene to tellurophene, resulted in narrowed optical band gaps and increased heteroatom – heteroatom interchain interactions. When these differences are taken into consideration, thiophene is shown to be the highest performing chalcogenophene comonomer of the series.udMoving to isoindigo, a new thieno[3,2-b]thiophene flanked structure (iITT) was designed and synthesised for the first time. The resultant narrow band gap co-polymers were shown to be excellent candidate materials for ambipolar OFET applications. Through a comparative literature and computational study, the new iITT unit is shown to be one of the highest performing units within this family of polymer structures.
机译:报告了用于有机光伏(OPV)和场效应晶体管(OFET)器件的十三种新型半导体聚合物的设计,合成和表征。讨论了每种聚合物的合理设计及其与化学和物理性质变化有关的结构,这些结构进一步用于合理化特定的器件性能。研究了各种结构修饰,重点是缺电子的双内酰胺结构二酮吡咯并吡咯(DPP)和异靛蓝,其侧基为噻吩并[3,2-b]噻吩供体基团。深入研究了噻吩并[3,2-b]噻吩二酮吡咯并吡咯(DPPTT)基共聚物的烷基链优化,发现增加的烷基链尺寸可提供改善的溶解度和更广泛的可及共聚单体单元。利用这种改善的溶解度,使用循环凝胶渗透色谱法(GPC)对新的DPPTT-T聚合物进行分馏。这样得到的馏分具有增加的分子量和狭窄的质量分布,从而导致OPV功率转换效率(PCE)增强大于50%。继续使用DPPTT-T烷基链,​​引入了新的OPV结构设计考虑因素,其中烷基链支化位置从聚合物主链开始系统地移动。由于PCE超过8%,由于分子间的相互作用增加,因此产生了具有更强π-π相互作用的高分子量聚合物,并显着增强了器件性能。使用新的更高性能的支链烷基链,还研究了不同硫属元素芴共聚单体OPV装置的作用,发现杂原子的大小增加,从噻吩到亚硒基再到碲烯,导致光学带隙变窄,杂原子-杂原子链间相互作用增加。考虑到这些差异后,噻吩被证明是该系列中性能最高的硫属元素oph共聚单体。 ud移至isoindigo,设计并合成了一种新的噻吩并[3,2-b]噻吩侧翼结构(iITT)。时间。所得的窄带隙共聚物被证明是用于双极性OFET应用的极好的候选材料。通过比较文献和计算研究,新的iITT单元被证明是该聚合物结构家族中性能最高的单元之一。

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    Meager Iain;

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