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利用飞秒转动相干光谱学和从头算计算准确确定环己烷的结构。

Accurate determination of the structure of cyclohexane by femtosecond rotational coherence spectroscopy and ab initio calculations.

机构信息

Departement für Chemie und Biochemie, Universität Bern, Freiestrasse 3, CH-3000 Bern 9, Switzerland.

出版信息

J Phys Chem A. 2011 Sep 1;115(34):9567-78. doi: 10.1021/jp2001546. Epub 2011 May 10.

DOI:10.1021/jp2001546
PMID:21557553
Abstract

We combine femtosecond time-resolved rotational coherence spectroscopy with high-level ab initio theory to obtain accurate structural information for the nonpolar molecules cyclohexane (C(6)H(12)) and cyclohexane-d(12) (C(6)D(12)). We measured the rotational B(0) and centrifugal distortion constants D(J), D(JK) of the v = 0 states of C(6)H(12) and C(6)D(12) to high accuracy, for example, B(0)(C(6)H(12)) = 4306.08(5) MHz, as well as B(v) for the vibrationally excited states ν(32), ν(6), ν(16) and ν(24) of C(6)H(12) and additionally ν(15) for C(6)D(12). To successfully reproduce the experimental RCS transient, the overtone and combination levels 2ν(32), 3ν(32), ν(32) + ν(6), and ν(32) + ν(16) had to be included in the RCS model calculations. The experimental rotational constants are compared to those obtained at the second-order Møller-Plesset (MP2) level. Combining the experimental and calculated rotational constants with the calculated equilibrium bond lengths and angles allows determination of accurate semiexperimental equilibrium structure parameters, for example, r(e)(C-C) = 1.526 ± 0.001 Å, r(e)(C-H(axial)) = 1.098 ± 0.001 Å, and r(e)(C-H(equatorial)) = 1.093 ± 0.001 Å. The equilibrium C-C bond length of C(6)H(12) is only 0.004 Å longer than that of ethane. The effect of ring strain due to the unfavorable gauche interactions is mainly manifested as small deviations from the C-C-C, C-C-H(axial), and C-C-H(equatorial) angles from the tetrahedral value.

摘要

我们结合飞秒时间分辨旋转相干光谱和高精度的从头计算理论,获得了非极性分子环己烷(C(6)H(12))和环己烷-d(12)(C(6)D(12))的准确结构信息。我们高精度地测量了 C(6)H(12)和 C(6)D(12)的 v = 0 态的旋转 B(0)和离心畸变常数 D(J)、D(JK),例如,B(0)(C(6)H(12)) = 4306.08(5) MHz,以及 C(6)H(12)的振动激发态 ν(32)、ν(6)、ν(16)和 ν(24)以及 C(6)D(12)的 ν(15)的 B(v)。为了成功重现实验 RCS 瞬变,必须将泛频和组合能级 2ν(32)、3ν(32)、ν(32) + ν(6)和 ν(32) + ν(16)纳入 RCS 模型计算中。实验旋转常数与二阶 Møller-Plesset(MP2)水平的结果进行了比较。将实验和计算的旋转常数与计算的平衡键长和角度相结合,可确定准确的半实验平衡结构参数,例如,r(e)(C-C) = 1.526 ± 0.001 Å,r(e)(C-H(axial)) = 1.098 ± 0.001 Å,r(e)(C-H(equatorial)) = 1.093 ± 0.001 Å。C(6)H(12)的平衡 C-C 键长仅比乙烷长 0.004 Å。由于不利的 gauche 相互作用导致的环应变的影响主要表现为 C-C-C、C-C-H(axial)和 C-C-H(equatorial)角度与四面体形值的微小偏差。

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