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四重[苯并]轮烯的合成与结构特征:螺旋排斥累积导致高度扭曲的π体系。

Synthesis and Structural Features of Quadruple Helicenes: Highly Distorted π Systems Enabled by Accumulation of Helical Repulsions.

机构信息

Graduate School of Science, ‡JST, ERATO, Itami Molecular Nanocarbon Project, and §Institute of Transformative Bio-Molecules (WPI-ITbM), Nagoya University , Nagoya 464-8602, Japan.

出版信息

J Am Chem Soc. 2016 Mar 16;138(10):3587-95. doi: 10.1021/jacs.6b01303. Epub 2016 Mar 4.

Abstract

Quadruple helicenes, bearing dithia[6]helicene and [5]helicene substructures, were prepared by a well-controlled Scholl reaction. The 4-fold helicity provides 9 stereoisomers including 4 pairs of enantiomers and 1 meso isomer. Among them, differently distorted structures of a propeller-shaped isomer (QH-A) and a saddle-shaped isomer (QH-B) were unambiguously determined by X-ray crystallography. Especially in the latter isomer, a proper accumulation of repulsions on the helical substructures twisted the naphthalene core to the limit (69.5°), the highest degree of twisting deformation per benzene unit (35.3° at the most). Photophysical and electrochemical studies showed a broadened HOMO-LUMO gap and a HOMO of QH-B lying lower compared to those of QH-A. These results together with the density functional theory (DFT) calculations have clearly demonstrated the electronic state dependency on the molecular geometry. Additionally, kinetic studies of the isomerization between these isomers using (1)H NMR, circular dichroism, and DFT calculations shed light on the interconversion pathways among the stereoisomers. The height of barriers in the inversion of a certain helical substructure may be affected by the neighboring helical substructures.

摘要

四重螺旋体,带有二硫[6]螺旋体和[5]螺旋体亚结构,通过可控的 Scholl 反应制备。4 重螺旋提供了 9 个立体异构体,包括 4 对对映异构体和 1 个内消旋体。其中,通过 X 射线晶体学明确确定了一个螺旋型异构体(QH-A)和一个鞍型异构体(QH-B)的不同扭曲结构。特别是在后一种异构体中,螺旋亚结构上的排斥力的适当积累将萘核扭曲到极限(69.5°),每个苯单元的扭曲变形最大(最扭曲的为 35.3°)。光物理和电化学研究表明,HOMO-LUMO 隙变宽,QH-B 的 HOMO 比 QH-A 更低。这些结果与密度泛函理论(DFT)计算一起清楚地表明了电子态对分子几何形状的依赖性。此外,使用(1)H NMR、圆二色性和 DFT 计算对这些异构体之间的互变异构进行的动力学研究揭示了立体异构体之间的互变途径。特定螺旋亚结构反转的势垒高度可能受到相邻螺旋亚结构的影响。

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