Chang Ting-Wei, Weng Yu-Ching, Tsai Yi-Ting, Jiang Yuanwen, Matsuhisa Naoji, Shih Chien-Chung
Department of Chemical Engineering and Materials Engineering, National Yunlin University of Science and Technology, Yunlin 64002, Taiwan.
Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
ACS Appl Mater Interfaces. 2023 Oct 28. doi: 10.1021/acsami.3c10033.
The manipulation of the polymer backbone structure has a profound influence on the crystalline behavior and charge transport characteristics of polymers. These strategies are commonly employed to optimize the performance of stretchable polymer semiconductors. However, a universal method that can be applied to conjugated polymers with different donor-acceptor combinations is still lacking. In this study, we propose a universal strategy to boost the stretchability of polymers by incorporating the nonlinear conjugated linker (NCL) into the main chain. Specifically, we incorporate meta-dibromobenzene (MB), characterized by its asymmetric linkage sites, as the NCL into the backbone of diketopyrrolopyrrole-thiophene-based (DPP-based) polymers. Our research demonstrates that the introduction of MB prompts chain-kinking, thereby disrupting the linearity and central symmetry of the DPP conjugated backbone. This modification reshapes the polymer conformation, decreasing the radius of gyration and broadening the free volume, which consequently adjusts the level of crystallinity, leading to a considerable increase in the stretchability of the polymer. Importantly, this method increases stretchability without compromising mobility and exhibits broad applicability across a wide range of donor-acceptor pair polymers. Leveraging this strategy, fully stretchable transistors were fabricated using a DPP polymer that incorporates 10 mol % of MB. These transistors display a mobility of approximately 0.5 cm V s and prove remarkably durable, maintaining 90% of this mobility even after enduring 1000 cycles at 25% strain. Overall, we propose a method to systematically control the main-chain conformation, thereby enhancing the stretchability of conjugated polymers in a widely applicable manner.
聚合物主链结构的调控对聚合物的结晶行为和电荷传输特性有着深远影响。这些策略通常用于优化可拉伸聚合物半导体的性能。然而,目前仍缺乏一种可应用于不同供体 - 受体组合的共轭聚合物的通用方法。在本研究中,我们提出了一种通用策略,即将非线性共轭连接体(NCL)引入主链以提高聚合物的拉伸性。具体而言,我们将具有不对称连接位点的间二溴苯(MB)作为NCL引入基于二酮吡咯并吡咯 - 噻吩(DPP基)聚合物的主链中。我们的研究表明,MB的引入促使链发生扭结,从而破坏了DPP共轭主链的线性和中心对称性。这种修饰重塑了聚合物构象,减小了回转半径并拓宽了自由体积,进而调整了结晶度水平,导致聚合物的拉伸性显著提高。重要的是,该方法在不降低迁移率的情况下提高了拉伸性,并且在广泛的供体 - 受体对聚合物中具有广泛的适用性。利用这一策略,使用含有10摩尔%MB的DPP聚合物制备了完全可拉伸的晶体管。这些晶体管的迁移率约为0.5 cm V s,并且表现出非常耐用,即使在25%应变下经受1000次循环后仍保持该迁移率的90%。总体而言,我们提出了一种系统控制主链构象的方法,从而以广泛适用的方式提高共轭聚合物的拉伸性。