Xu Jianwei, Liu Zhiming, Jing Lei, Chen Jingbo
School of Materials Science & Engineering, Zhengzhou University, Zhengzhou 450002, China.
Materials (Basel). 2021 Sep 4;14(17):5071. doi: 10.3390/ma14175071.
Poly[N-9'-hepta-decanyl-2,7-carbazole-alt-5-5-(4',7'-di-2-thienyl-2',1',3'-benzothiadiazole)] (PCDTBT) is a stable semiconducting polymer with high rigidity in its molecular chains, which makes it difficult to organize into an ordered structure and affects the device performance. Here, a PCDTBT network consisting of aggregates and nanofibers in thin films was fabricated through the phase separation of mixed PCDTBT and polyethylene glycol (PEG). Using atomic force microscopy (AFM), the effect of the blending conditions (weight ratio, solution concentration, and molecular weight) and processing conditions (substrate temperature and solvent) on the resulting phase-separated morphologies of the blend films after a selective washing procedure was studied. It was found that the phase-separated structure's transition from an island to a continuous structure occurred when the weight ratio of PCDTBT/PEG changed from 2:8 to 7:3. Increasing the solution concentration from 0.1 to 3.0 wt% led to an increase in both the height of the PCDTBT aggregate and the width of the nanofiber. When the molecular weight of the PEG was increased, the film exhibited a larger PCDTBT aggregate size. Meanwhile, denser nanofibers were found in films prepared using PCDTBT with higher molecular weight. Furthermore, the electrical characteristics of the PCDTBT network were measured using conductive AFM. Our findings suggest that phase separation plays an important role in improving the molecular chain diffusion rate and fabricating the PCDTBT network.
聚[N-9'-十七烷基-2,7-咔唑-alt-5,5-(4',7'-二-2-噻吩基-2',1',3'-苯并噻二唑)](PCDTBT)是一种稳定的半导体聚合物,其分子链具有高刚性,这使得它难以组装成有序结构并影响器件性能。在此,通过混合PCDTBT和聚乙二醇(PEG)的相分离制备了一种由薄膜中的聚集体和纳米纤维组成的PCDTBT网络。使用原子力显微镜(AFM),研究了混合条件(重量比、溶液浓度和分子量)和加工条件(基板温度和溶剂)对经过选择性洗涤程序后共混膜所得相分离形态的影响。发现当PCDTBT/PEG的重量比从2:8变为7:3时,相分离结构从岛状转变为连续结构。将溶液浓度从0.1 wt%提高到3.0 wt%导致PCDTBT聚集体的高度和纳米纤维的宽度均增加。当PEG的分子量增加时,薄膜表现出更大的PCDTBT聚集体尺寸。同时,在使用较高分子量的PCDTBT制备的薄膜中发现了更致密的纳米纤维。此外,使用导电AFM测量了PCDTBT网络的电学特性。我们的研究结果表明,相分离在提高分子链扩散速率和制备PCDTBT网络方面起着重要作用。