Department of Chemistry, Columbia University, New York, New York 10027, United States.
Department of Materials Science and Engineering, Cornell University, Ithaca, New York 14853, United States.
J Am Chem Soc. 2023 Mar 8;145(9):4940-4945. doi: 10.1021/jacs.2c12437. Epub 2023 Feb 28.
Here, we describe the synthesis of the hexameric macrocyclic aniline (MA[]), which spontaneously assembles into coaxially conductive organic wires in its oxidized and acidified emeraldine salt (ES) form. Electrical measurements reveal that ES-MA[] exhibits high electrical conductivity (7.5 × 10 S·cm) and that this conductivity is acid-base responsive. Single-crystal X-ray crystallography reveals that ES-MA[] assembles into well-defined trimeric units that then stack into nanotubes with regular channels, providing a potential route to synthetic nanotubes that are leveraged for ion or small molecule transport. Ultraviolet-visible-near-infrared absorbance spectroscopy and electron paramagnetic spectroscopy showcase the interconversion between acidic (conductive) and basic (insulating) forms of these macrocycles and how charge carriers are formed through protonation, giving rise to the experimentally observed high electrical conductivity.
在这里,我们描述了六元大环苯胺(MA[])的合成,它在氧化和酸化的埃默林盐(ES)形式下自发组装成同轴导电有机线。电导率测量表明 ES-MA[]具有高电导率(7.5×10 S·cm),并且这种电导率对酸碱具有响应性。单晶 X 射线晶体学揭示了 ES-MA[]组装成定义良好的三聚体单元,然后堆叠成具有规则通道的纳米管,为合成纳米管提供了一种潜在的途径,可用于离子或小分子的传输。紫外可见近红外吸收光谱和电子顺磁共振光谱展示了这些大环的酸(导电)和碱(绝缘)形式之间的相互转换,以及如何通过质子化形成载流子,从而产生实验观察到的高电导率。