Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH) , Pohang, Gyeongbuk 37673, Korea.
Department of Mechanical Engineering, Khalifa University of Science and Technology , Abu Dhabi 127788, United Arab Emirates.
ACS Appl Mater Interfaces. 2017 Apr 26;9(16):14120-14128. doi: 10.1021/acsami.6b16703. Epub 2017 Apr 11.
Considering all the potential applications of organic electronics in portable, wearable, and implantable devices, it is of great importance to develop electroactive materials that possess mechanical reliability along with excellent electronic performance. The coexistence of these two attributes, however, is very difficult to achieve because there is an inverse relationship between the electrical properties and the mechanical flexibility, both of which are associated with the conjugation length and intermolecular ordering of the polymers. Herein, we demonstrate a simple and robust approach based on solution assembly of two different poly(3-hexylthiophene)s (P3HTs) with regioregularity (RR) contents of 97% and 66% to impart both electrical and mechanical properties to films for organic electronic applications. The 97% RR P3HT exhibits high electronic performance but poor mechanical resilience, and vice versa for the 66% RR P3HT. Selective crystallization of high RR P3HT induced by solution assembly allows the use of a one-step process to construct percolated networks of high RR P3HT nanowires (NWs) in a low RR P3HT matrix. Only 5 wt % of high RR P3HT NWs in a 95 wt % low RR P3HT matrix was required to produce hole mobilities comparable to that of pure high RR P3HT, and this blend film exhibited improvements by factors of 20 and 60 in elongation at break and toughness, respectively. Selective self-assembly of RR-controlled polymers allowed us to overcome the fragile nature of highly crystalline conjugated polymer films without sacrificing their electronic properties.
考虑到有机电子学在可移植、可穿戴和可植入设备中的所有潜在应用,开发同时具有机械可靠性和优异电子性能的电活性材料非常重要。然而,这两个属性的共存非常困难,因为电性能和机械灵活性之间存在反比关系,而这两个性能都与聚合物的共轭长度和分子间有序性有关。在此,我们展示了一种基于溶液组装两种不同的具有 97%和 66%区域规整度(RR)的聚 3-己基噻吩(P3HT)的简单而稳健的方法,为有机电子应用的薄膜赋予了电和机械性能。97% RR P3HT 表现出高的电子性能,但机械弹性差,反之 66% RR P3HT 则表现出高的机械弹性,但电子性能差。通过溶液组装诱导的高 RR P3HT 的选择性结晶,允许使用一步法在低 RR P3HT 基体中构建高 RR P3HT 纳米线(NW)的渗流网络。仅需在 95wt%的低 RR P3HT 基体中添加 5wt%的高 RR P3HT NW,就可以获得与纯高 RR P3HT 相当的空穴迁移率,并且这种共混膜的断裂伸长率和韧性分别提高了 20 倍和 60 倍。RR 控制聚合物的选择性自组装使我们能够克服高度结晶共轭聚合物膜的脆弱性,而不牺牲其电子性能。