侧链
烷基
材料科学
有机半导体
小分子
共轭体系
膦酸盐
分子
有机电子学
硅氧烷
聚合物
高分子化学
立体化学
有机化学
化学
晶体管
光电子学
复合材料
电压
物理
量子力学
生物化学
作者
So‐Huei Kang,Doyoung Lee,Hyunwook Kim,Wonbin Choi,Jiyeon Oh,Joon Hak Oh,Joon Hak Oh,Joon Hak Oh,Changduk Yang
标识
DOI:10.1021/acsami.1c14945
摘要
When designing organic semiconductors, side-chain engineering is as important as modifying the conjugated backbone, which has a significant impact on molecular ordering, morphology, and thus electronic device performance. We have developed three dicyanovinyl-end-capped donor–acceptor diketopyrrolopyrrole-based n-type small molecules (C2C9CN, SiC4CN, and EH4PCN) bearing an identical length of alkyl spacer yet different end-functionalized side chains (i.e., alkyl-, siloxane-, and phosphonate-end pendants). The effects of the end-functionalized side chains on the intrinsic molecular properties, microstructure, and charge transport of the small-molecule series were investigated. In comparison with the alkyl-end side chains, incorporating siloxane-end side chains into the backbone facilitates 2D edge-on oriented high intergrain connectivity/crystallinity and compatibility with the substrate surface, whereas the phosphonate-end analogues have an adverse effect on the film-forming quality due to high polarity. Thereby, an organic field-effect transistor fabricated by SiC4CN shows the best electron mobility up to 1.59 × 10 –1 cm 2 V –1 s –1 along with a high current on/off ratio >10 5 . This study contributes to our understanding of the role of the end-functionalized side chains (e.g., the effects of polarity and bulkiness of the end groups) for the development of high-performance semiconductors.
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