Department of Chemistry, Purdue University , West Lafayette, Indiana 47907, United States.
MOE Key Laboratory of Macromolecule Synthesis and Functionalization, State Key Laboratory of Silicon Materials, Department of Polymer Science and Engineering, Zhejiang University , Hangzhou 310027, P. R. China.
ACS Appl Mater Interfaces. 2017 Aug 2;9(30):25426-25433. doi: 10.1021/acsami.7b07624. Epub 2017 Jul 21.
The selection of side chains is important in design of conjugated polymers. It not only affects their intrinsic physical properties, but also has an impact on thin film morphologies. Recent reports suggested that a face-on/edge-on bimodal orientation observed in polymer thin films may be responsible for a three-dimensional (3D) charge transport and leads to dramatically improved mobility in donor-acceptor based conjugated polymers. To achieve a bimodal orientation in thin films has been seldom explored from the aspect of molecular design. Here, we demonstrate a design strategy involving the use of asymmetric side chains that enables an isoindigo-based polymer to adopt a distinct bimodal orientation, confirmed by the grazing incidence X-ray diffraction. As a result, the polymer presents an average high mobility of 3.8 ± 0.7 cm V s with a maximum value of 5.1 cm V s, in comparison with 0.47 and 0.51 cm V s obtained from the two reference polymers. This study exemplifies a new strategy to develop the next generation polymers through understanding the property-structure relationship.
侧链的选择在共轭聚合物的设计中非常重要。它不仅影响聚合物的固有物理性质,还会影响薄膜的形态。最近的研究表明,聚合物薄膜中观察到的面/边二模态取向可能是三维(3D)电荷输运的原因,并导致供体-受体型共轭聚合物的迁移率显著提高。从分子设计的角度来看,很少有研究探索在薄膜中实现二模态取向。在这里,我们展示了一种涉及使用不对称侧链的设计策略,使基于异吲哚的聚合物能够采用独特的二模态取向,这通过掠入射 X 射线衍射得到了证实。结果表明,与两个参比聚合物获得的 0.47 和 0.51 cm V s 相比,该聚合物的平均迁移率高达 3.8 ± 0.7 cm V s,最高值为 5.1 cm V s。这项研究通过理解性能-结构关系,为开发下一代聚合物提供了一种新的策略。