Department of Chemistry , University of South Florida , Tampa , Florida 33620 , United States.
Shandong Province Key Laboratory of Medical Physics and Image Processing Technology, School of Physics and Electronics , Shandong Normal University , Jinan 250358 , China.
J Am Chem Soc. 2018 Oct 31;140(43):14087-14096. doi: 10.1021/jacs.8b05530. Epub 2018 Oct 5.
In the seeking of molecular expression of fractal geometry, chemists have endeavored in the construction of molecules and supramolecules during the past few years, while only a few examples were reported, especially for the discrete architectures. We herein designed and constructed five generations of supramolecular fractals (G1-G5) based on the coordination-driven self-assembly of terpyridine ligands. All the ligands were synthesized from triphenylamine motif, which played a central role in geometry control. Different approaches based on direct Sonogashira coupling and/or ⟨tpy-Ru(II)-tpy⟩ connectivity were employed to prepare complex Ru(II)-organic building blocks. Fractals G1-G5 were obtained in high yields by precise coordination of organic or Ru(II)-organic building blocks with Zn(II) ions. Characterization of those architectures were accomplished by 1D and 2D NMR spectroscopy, electrospray ionization mass spectrometry (ESI-MS), traveling-wave ion mobility mass spectrometry (TWIM-MS), and transmission electron microscopy (TEM). Furthermore, the two largest fractals also hierarchically self-assemble into ordered supramolecular nanostructures either at solid/liquid interface or in solution on the basis of their well-defined scaffolds.
在寻求分形几何的分子表达方面,化学家们在过去几年中致力于分子和超分子的构建,尽管已经有一些报道,但离散结构的例子仍然很少。我们设计并构建了五代基于金属配位驱动的自组装超分子分形(G1-G5),配体均由三苯胺结构单元合成,其在几何控制中起核心作用。采用不同的方法,包括直接 Sonogashira 偶联和/或 ⟨tpy-Ru(II)-tpy⟩连接,制备复杂的 Ru(II)-有机建筑块。通过有机或 Ru(II)-有机建筑块与 Zn(II)离子的精确配位,以高产率得到分形 G1-G5。通过一维和二维 NMR 光谱、电喷雾电离质谱(ESI-MS)、行波离子迁移质谱(TWIM-MS)和透射电子显微镜(TEM)对这些结构进行了表征。此外,这两个最大的分形也可以基于其明确的支架在固/液界面或溶液中自组装成有序的超分子纳米结构。