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碘化氢同二聚体(HI)2 中的配对氢键。

Paired hydrogen bonds in the hydrogen halide homodimer (HI)2.

机构信息

Chemistry Department, Texas A&M University, College Station, Texas 77843-3255, USA.

出版信息

J Chem Phys. 2011 Feb 14;134(6):064317. doi: 10.1063/1.3551621.

Abstract

The HI homodimer was found to have structural and vibrational properties unlike any other previously studied (HX)(2) system, with X = F, Cl, and Br. The infrared spectrum of (HI)(2) is also observed to be distinctly different from the other members of the series. In addition, the interaction energy of the (HI)(2) dimer has been calculated using the coupled-cluster with singles, doubles, and perturbative triples [CCSD(T)] level of theory. A four-dimensional morphed intermolecular potential has been generated and then morphed using available near infrared and submillimeter spectroscopic data recorded in supersonic jet expansions. The morphed potential is found to have a single global minimum with a symmetric structure having C(2h) symmetry. The equilibrium dissociation energy is found to be 359 cm(-1) with the geometry in Jacobi coordinates of R(e) = 4.35 Å, θ(1) = 43°, θ(2) = 137°, and φ = 180°. The infrared spectrum is characterized by pairs of excited vibrational states resulting from the coupling of the two HI stretching modes. A qualitative model using a quadratic approximation has been fitted to obtain an estimate of this coupling. Furthermore, a morphed intermolecular potential for the vibrationally excited system was also obtained that gives a quantitative estimate of the shift in the potential due to the excitation. The submillimeter analysis is consistent with a ground state having its highest probability as a paired hydrogen bond configuration with R(0) = 4.56372(1) Å and an average angle θ=cos(-1)(<cos(2) θ>(1/2)) = 46.40(1)° (between the diatom center of mass∕center of mass axis and direction of each component hydrogen iodide molecule). On monodeuteration, however, the ground state is predicted to undergo an anomalous structural isotope change to an L-shaped HI-DI structure with highest probability at R(0) = 4.51 Å, θ(1) = 83°, θ(2) = 177°, and φ = 180°. These results provide a test for large scale ab initio calculations and have implications for the interpretation of photoinduced chemistry and other properties of the dimer.

摘要

HI 同二聚体被发现具有不同于以往研究的(HX)(2)体系的结构和振动特性,其中 X = F、Cl 和 Br。(HI)(2)的红外光谱也明显不同于该系列的其他成员。此外,还使用耦合簇加上单重态、双重态和微扰三重态 [CCSD(T)] 理论计算了(HI)(2)二聚体的相互作用能。生成了一个四维变形的分子间势能,并使用在超音速射流膨胀中记录的可用近红外和亚毫米波光谱数据对其进行变形。发现变形势具有单个全局最小值,具有 C(2h)对称的对称结构。平衡离解能为 359cm(-1),在 Jacobi 坐标中的几何形状为 R(e) = 4.35 Å、θ(1) = 43°、θ(2) = 137°和 φ = 180°。红外光谱的特征是两个 HI 伸缩模式耦合产生的激发振动态对。使用二次近似的定性模型进行拟合,以获得这种耦合的估计。此外,还获得了振动激发体系的变形分子间势能,这可以定量估计激发引起的势能位移。亚毫米波分析与基态一致,基态的最高概率为配对氢键构型,R(0) = 4.56372(1)Å,平均角度θ=cos(-1)(<cos(2) θ>(1/2)) = 46.40(1)°(双原子中心质量∕质量轴与每个碘化氢分子组件方向之间的夹角)。然而,在单氘化作用下,基态预计会经历异常的结构同位素变化,形成具有最高概率的 L 形 HI-DI 结构,R(0) = 4.51 Å,θ(1) = 83°,θ(2) = 177°,φ = 180°。这些结果为大规模从头算计算提供了检验,并对二聚体的光诱导化学和其他性质的解释具有影响。

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