聚乙炔
化学
乙炔
拓扑(电路)
聚合
聚合物
高分子化学
环烯
催化作用
钨
组合化学
结晶学
立体化学
有机化学
数学
组合数学
作者
Zhihui Miao,Stella A. Gonsales,Christian Ehm,Frédéric Mentink‐Vigier,Clifford R. Bowers,Brent S. Sumerlin,Adam S. Veige
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2021-06-03
卷期号:13 (8): 792-799
被引量:83
标识
DOI:10.1038/s41557-021-00713-2
摘要
Here we demonstrate the synthesis of cyclic polyacetylene (c-PA), or [∞]annulene, via homogeneous tungsten-catalysed polymerization of acetylene. Unique to the cyclic structure and evidence for its topology, the c-PA contains >99% trans double bonds, even when synthesized at −94 °C. High activity with low catalyst loadings allows for the synthesis of temporarily soluble c-PA, thus opening the opportunity to derivatize the polymer in solution. Absolute evidence for the cyclic topology comes from atomic force microscopy images of bottlebrush derivatives generated from soluble c-PA. Now available in its cyclic form, initial characterization studies are presented to elucidate the topological differences compared with traditionally synthesized linear polyacetylene. One advantage to the synthesis of c-PA is the direct synthesis of the trans–transoid isomer. Low defect concentrations, low soliton concentration, and relatively high conjugation lengths are characteristics of c-PA. Efficient catalysis permits the rapid synthesis of lustrous flexible thin films of c-PA, and when doped with I2, they are highly conductive (398 (±76) Ω−1 cm−1). Lustrous flexible thin films of semiconducting cyclic polyacetylene (c-PA) have been synthesized and characterized. Rapid and efficient tungsten-catalysed acetylene polymerization conditions produce temporarily soluble c-PA, enabling the in situ derivatization of this typically insoluble polymer. Compelling evidence for the cyclic topology—and its influence on the physical properties of the polymer—are presented.
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