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关于碲化氢(H₂Te)的紫外光解离

On the ultraviolet photodissociation of H(2)Te.

作者信息

Alekseyev Aleksey B, Liebermann Heinz-Peter, Wittig Curt

机构信息

Fachbereich C--heoretische Chemie, Bergische Universität Wuppertal, Gaussstrasse 20, D-42097 Wuppertal, Germany.

出版信息

J Chem Phys. 2004 Nov 15;121(19):9389-95. doi: 10.1063/1.1799572.

DOI:10.1063/1.1799572
PMID:15538858
Abstract

The photodissociation of H(2)Te through excitation in the first absorption band is investigated by means of multireference spin-orbit configuration interaction (CI) calculations. Bending potentials for low-lying electronic states of H(2)Te are obtained in C(2v) symmetry for Te-H distances fixed at the ground state equilibrium value of 3.14a(0), as well as for the minimum energy path constrained to R(1)=R(2). Asymmetric cuts of potential energy surfaces for excited states (at R(1)=3.14a(0) and theta;=90.3 degrees ) are obtained for the first time. It is shown that vibrational structure in the 380-400 nm region of the long wavelength absorption tail is due to transitions to 3A('), which has a shallow minimum at large HTe-H separations. Transitions to this state are polarized in the molecular plane, and this state converges to the excited TeH((2)Pi(1/2))+H((2)S) limit. These theoretical data are in accord with the selectivity toward TeH((2)Pi(1/2)) relative to TeH((2)Pi(3/2)) that has been found experimentally for 355 nm H(2)Te photodissociation. The calculated 3A(')<--XA(') transition dipole moment increases rapidly with HTe-H distance; this explains the observation of 3A(') vibrational structure for low vibrational levels, despite unfavorable Franck-Condon factors. According to the calculated vertical energies and transition moment data, the maximum in the first absorption band at approximately 245 nm is caused by excitation to 4A("), which has predominantly 2(1)A(") ((1)B(1) in C(2v) symmetry) character.

摘要

通过多参考自旋轨道组态相互作用(CI)计算研究了H₂Te在第一吸收带中的光解离。对于Te - H距离固定在基态平衡值3.14a₀,以及对于限制在R₁ = R₂的最小能量路径,在C₂ᵥ对称性下获得了H₂Te低电子态的弯曲势能。首次获得了激发态势能面的不对称截面(在R₁ = 3.14a₀和θ = 90.3°)。结果表明,长波长吸收尾部380 - 400 nm区域的振动结构是由于跃迁到³A′,该态在大HTe - H间距处有一个浅的最小值。向该态的跃迁在分子平面内极化,并且该态收敛到激发的TeH(²Π₁/₂)+H(²S)极限。这些理论数据与在355 nm H₂Te光解离实验中发现的相对于TeH(²Π₃/₂)对TeH(²Π₁/₂)的选择性一致。计算得到的³A′←XA′跃迁偶极矩随HTe - H距离迅速增加;这解释了尽管弗兰克 - 康登因子不利,但仍观察到低振动态的³A′振动结构。根据计算的垂直能量和跃迁矩数据,在约245 nm处第一吸收带的最大值是由激发到⁴A″引起的,该态主要具有²¹A″(在C₂ᵥ对称性中为¹B₁)特征。

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