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在射频炉中捕获反芳香 (#6094) C68 碳笼。

Capturing the antiaromatic (#6094) C68 carbon cage in the radio-frequency furnace.

机构信息

Max Planck Institute for Solid State Research, Heisenbergstrasse 1, 70569 Stuttgart, Germany.

出版信息

Chemistry. 2012 Jul 23;18(30):9289-93. doi: 10.1002/chem.201200894. Epub 2012 Jun 26.

Abstract

Although all fullerenes do not satisfy the classical aromaticity condition, as a result of their nonplanar nature, they experience effective stabilization due to extensive cyclic π-electron delocalization and exhibit pronounced "spherical aromaticity". This feature has raised the question of the opposite phenomenon, that is, the existence of antiaromatic carbon cages. Here the first experimental evidence of the existence of antiaromatic fullerenes is reported. The elusive (#6094)C(68) was effectively captured as C(68)Cl(8) by in situ chlorination in the gas phase during radio-frequency synthesis. The chlorinated cage was separated by means of multistage HPLC, and its connectivity unambiguously determined by single-crystal X-ray analysis. Halogen-stripped pristine (#6094)C(68) was monitored by mass spectrometry of the chlorinated C(68)Cl(8) cage. Quantum chemical calculations reveal the highly antiaromatic character of (#6094)C(68), in accordance with all geometric, energetic, and magnetic criteria of aromaticity. Chlorine addition leads to substantial stabilization of the cage owing to aromatization in the resulting C(68)Cl(8), which explains its high abundance in the primary fullerene soot. This work provides new insights into the process of fullerene formation and better understanding of aromaticity phenomena in general.

摘要

尽管所有富勒烯都不符合经典芳香性条件,但由于其非平面性质,它们经历了广泛的环状π电子离域的有效稳定化,表现出明显的“球形芳香性”。这一特征引发了一个相反现象的问题,即存在反芳香碳笼。本文首次报道了反芳香富勒烯存在的实验证据。在射频合成过程中,通过气相原位氯化,有效地将难以捉摸的 (#6094)C(68)捕获为 C(68)Cl(8)。通过多步 HPLC 分离出氯化笼,并通过单晶 X 射线分析明确确定其连接性。通过对氯化 C(68)Cl(8)笼的质谱监测,监测了经卤素脱除的原始 (#6094)C(68)。量子化学计算表明 (#6094)C(68)具有高度反芳香性,符合芳香性的所有几何、能量和磁学标准。由于在生成的 C(68)Cl(8)中发生了芳香化,氯的加成导致了笼的显著稳定化,这解释了其在原始富勒烯烟尘中的高丰度。这项工作为富勒烯形成过程提供了新的见解,并更好地理解了一般的芳香性现象。

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