Department of Chemistry, Chemistry Research Laboratory, University of Oxford, Oxford OX1 3TA, United Kingdom.
J Am Chem Soc. 2020 Aug 5;142(31):13523-13532. doi: 10.1021/jacs.0c05308. Epub 2020 Jul 20.
Bulky photolabile masked alkyne equivalents (MAEs) are needed for the synthesis of polyyne polyrotaxanes, as insulated molecular wires and as stabilized forms of the linear polymeric allotrope of carbon, carbyne. We have synthesized a novel MAE based on phenanthrene and compared it with an indane-based MAE. Photochemical unmasking of model compounds was studied at different wavelengths (250 and 350 nm), and key products were identified by NMR spectroscopy and X-ray crystallography. UV irradiation at 250 nm leads to unmasking of both MAEs. Irradiation of the phenanthrene system at 350 nm results in quantitative dimerization via [2 + 2] cycloaddition to form a [3]-ladderane; irradiation of this ladderane at 250 nm generates a dihydrotriphenylene, which can be oxidized easily to a triphenylene. Irradiation of the indane-based MAE at 350 nm in the presence of traces of oxygen forms an endoperoxide and a bisepoxide. Both MAEs have been incorporated into rotaxanes via copper-mediated active metal template Glaser or Cadiot-Chodkiewicz coupling. The identity of the rotaxanes was confirmed by NMR spectroscopy and mass spectrometry. The phenanthrene rotaxane decomposes during attempted photochemical unmasking, whereas photolysis of the indane rotaxane results in unmasking of the polyyne thread to form a rotaxane with a chain of 16 -hybridized carbon atoms. This approach opens avenues toward the synthesis of encapsulated carbon allotropes.
大体积光解掩蔽炔等价物(MAE)是多炔聚轮烷、绝缘分子线以及作为线性聚合碳同素异形体的稳定形式卡宾的合成所需的。我们合成了一种基于菲的新型 MAE,并将其与基于茚的 MAE 进行了比较。在不同波长(250nm 和 350nm)下研究了模型化合物的光解掩蔽,通过 NMR 光谱和 X 射线晶体学鉴定了关键产物。在 250nm 的紫外光照射下,两种 MAE 均被解掩蔽。在 350nm 下辐照菲体系会导致通过 [2+2]环加成定量二聚形成 [3]-梯形烷;在 250nm 下辐照此梯形烷会生成二氢三联苯,其容易被氧化为三联苯。在存在痕量氧气的情况下,在 350nm 下辐照基于茚的 MAE 会形成内过氧化物和双环氧化物。这两种 MAE 都通过铜介导的活性金属模板 Glaser 或 Cadiot-Chodkiewicz 偶联被掺入轮烷中。轮烷的身份通过 NMR 光谱和质谱得到证实。在尝试光解掩蔽时,菲轮烷会分解,而茚轮烷的光解会导致聚炔线解掩蔽,形成具有 16 个杂化碳原子链的轮烷。这种方法为封装碳同素异形体的合成开辟了途径。