Golling Florian E, Osella Silvio, Quernheim Martin, Wagner Manfred, Beljonne David, Müllen Klaus
Max Planck Institute for Polymer Research , Ackermannweg 10 , 55128 Mainz , Germany . Email:
Graduate School Materials Science in Mainz , Staudinger Weg 9 , 55128 Mainz , Germany.
Chem Sci. 2015 Dec 1;6(12):7072-7078. doi: 10.1039/c5sc02547h. Epub 2015 Sep 8.
The synthesis of π-extended [12]cycloparaphenylene (CPP) derivatives from a kinked triangular macrocycle is presented. Depending on the reaction conditions for reductive aromatization, either a hexaphenylbenzene cyclohexamer or its -symmetric congener was obtained. Their structures were confirmed by NMR spectroscopy or X-ray crystallographic analysis. With the support of DFT calculations, a mechanistic explanation for the unexpected formation of the oval shaped bis(cyclohexadiene)-bridged -symmetric macrocycle is provided. The here employed congested hexaphenylbenzene mode of connectivity in conjunction with a non-strained precursor improves oxidative cyclodehydrogenation toward the formation of ultrashort carbon nanotubes (CNT)s. Thus, this strategy can pave the way for new conceptual approaches of a solution-based bottom-up synthesis of CNTs.
本文介绍了由扭结三角形大环合成π-扩展[12]环对亚苯基(CPP)衍生物的方法。根据还原芳构化的反应条件,可得到六苯基苯环六聚体或其对称异构体。通过核磁共振光谱或X射线晶体学分析确定了它们的结构。在密度泛函理论计算的支持下,对椭圆形双(环己二烯)桥连对称大环的意外形成提供了机理上的解释。这里采用的拥挤的六苯基苯连接模式与无张力的前体相结合,改善了氧化环脱氢反应,有利于形成超短碳纳米管(CNT)。因此,该策略可为基于溶液的自下而上合成碳纳米管的新概念方法铺平道路。