Kilde Martin Drøhse, Murray Adrian H, Andersen Cecilie Lindholm, Storm Freja Eilsø, Schmidt Katrin, Kadziola Anders, Mikkelsen Kurt V, Hampel Frank, Hammerich Ole, Tykwinski Rik R, Nielsen Mogens Brøndsted
Department of Chemistry, University of Copenhagen, Universitetsparken 5, DK-2100, Copenhagen Ø, Denmark.
Department of Chemistry, University of Alberta, Edmonton, AB, Canada, T6G 2G2.
Nat Commun. 2019 Aug 16;10(1):3714. doi: 10.1038/s41467-019-11700-0.
Graphyne allotropes of carbon are fascinating materials, and their electronic properties are predicted to rival those of the "wonder material" graphene. One allotrope of graphyne, having rectangular symmetry rather than hexagonal, stands out as particularly attractive, namely 6,6,12-graphyne. It is currently an insurmountable challenge, however, to design and execute a synthesis of this material. Herein, we present synthesis and electronic properties of molecules that serve as model compounds. These oligomers, so-called radiaannulenes, are prepared by iterative acetylenic coupling reactions. Systematic optical and redox studies indicate the effective conjugation length of the radiaannulene oligomers is nearly met by the length of the trimer. The HOMO-LUMO gap suggested by the series of oligomers is still, however, higher than that expected for 6,6,12-graphyne from theory, which predicts two nonequivalent distorted Dirac cones (no band gap). Thus, the radiaannulene oligomers present a suitable length in one dimension of a sheet, but should be expanded in the second dimension to provide a unique representation of 6,6,12-graphyne.
碳的石墨炔同素异形体是令人着迷的材料,其电子特性预计可与“神奇材料”石墨烯相媲美。一种具有矩形对称性而非六边形对称性的石墨炔同素异形体显得格外引人注目,即6,6,12 - 石墨炔。然而,目前要设计并实现这种材料的合成是一项难以克服的挑战。在此,我们展示了用作模型化合物的分子的合成及电子特性。这些低聚物,即所谓的辐射轮烯,是通过迭代炔烃偶联反应制备的。系统的光学和氧化还原研究表明,辐射轮烯低聚物的有效共轭长度几乎与三聚体的长度相当。然而,该系列低聚物所显示的最高占据分子轨道(HOMO)-最低未占据分子轨道(LUMO)能隙仍高于理论上对6,6,12 - 石墨炔所预期的值,理论预测其有两个不等价的扭曲狄拉克锥(无带隙)。因此,辐射轮烯低聚物在片层的一个维度上呈现出合适的长度,但应在第二个维度上进行扩展,以提供6,6,12 - 石墨炔的独特表示。