Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.
Biostructural Mechanism Laboratory, RIKEN, SPring-8 Center, 1-1-1 Kouto, Sayo, Hyogo 679-5148, Japan.
J Am Chem Soc. 2021 Apr 14;143(14):5465-5469. doi: 10.1021/jacs.1c00863. Epub 2021 Mar 24.
The layered structures of graphite and related nanographene molecules play key roles in their physical and electronic functions. However, the stacking modes of negatively curved nanographenes remain unclear, owing to the lack of suitable nanographene molecules. Herein, we report the synthesis and one-dimensional supramolecular self-assembly of negatively curved nanographenes without any assembly-assisting substituents. This curved nanographene self-assembles in various organic solvents and acts as an efficient gelator. The formation of nanofibers was confirmed by microscopic measurements, and an unprecedented double-helix assembly by continuous π-π stacking was uncovered by three-dimensional electron crystallography. This work not only reports the discovery of an all-sp-carbon supramolecular π-organogelator with negative curvature but also demonstrates the power of three-dimensional electron crystallography for the structural determination of submicrometer-sized molecular alignment.
石墨和相关的纳米石墨烯分子的层状结构在它们的物理和电子功能中起着关键作用。然而,由于缺乏合适的纳米石墨烯分子,负曲率纳米石墨烯的堆积方式仍不清楚。在此,我们报告了无任何组装辅助取代基的负曲率纳米石墨烯的合成和一维超分子自组装。这种弯曲的纳米石墨烯在各种有机溶剂中自组装,并作为一种有效的凝胶剂。通过微观测量证实了纳米纤维的形成,并通过三维电子晶体学揭示了前所未有的通过连续 π-π 堆积形成的双螺旋组装。这项工作不仅报道了具有负曲率的全 sp 碳超分子 π-有机凝胶剂的发现,还展示了三维电子晶体学在确定亚微米尺寸分子排列结构方面的强大功能。