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C60合理合成的基础:C60H30多芳烃的环脱氢反应

Groundwork for a rational synthesis of C60: cyclodehydrogenation of a C60H30 polyarene.

作者信息

Boorum M M, Vasil'ev Y V, Drewello T, Scott L T

机构信息

Department of Chemistry, Merkert Chemistry Center, Boston College, Chestnut Hill, MA 02467, USA.

出版信息

Science. 2001 Oct 26;294(5543):828-31. doi: 10.1126/science.1064250.

Abstract

A C60H30 polycyclic aromatic hydrocarbon (PAH) that incorporates all 60 carbon atoms and 75 of the 90 carbon-carbon bonds required to form the fullerene C60 has been synthesized in nine steps by conventional laboratory methods. Laser irradiation of this C60H30 PAH at 337 nanometers induces hydrogen loss and the formation of C60, as detected by mass spectrometry. A specifically labeled [13C3]C60H30 retains all three 13C atoms during the cage formation process. A structurally related C48H24 PAH that lacks the three peripheral benzene rings cannot be transformed into C60, whereas the next higher homolog, a C80H40 PAH, degrades to the C60H30 PAH, which then loses hydrogen to give [60]fullerene. These control experiments verify that the C60 is formed by a molecular transformation directly from the C60H30 PAH and not by fragmentation and recombination in the gas phase.

摘要

一种包含所有60个碳原子以及形成富勒烯C60所需90个碳 - 碳键中的75个键的C60H30多环芳烃(PAH)已通过传统实验室方法分九步合成。用337纳米的激光照射这种C60H30 PAH会导致氢损失并形成C60,这通过质谱检测得以证实。一种经过特殊标记的[13C3]C60H30在笼状结构形成过程中保留了所有三个13C原子。一种缺少三个外围苯环的结构相关的C48H24 PAH无法转化为C60,而其下一个更高同系物,即C80H40 PAH,会降解为C60H30 PAH,然后该PAH失去氢生成[60]富勒烯。这些对照实验证实C60是由C60H30 PAH直接通过分子转化形成的,而非通过气相中的碎片化和重组形成。

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