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Cu(n)(BO2)m-(n, m=1, 2) 团簇的结构和光电子能谱:超卤化行为的观察。

Structures and photoelectron spectroscopy of Cu(n)(BO2)m-(n, m=1, 2) clusters: observation of hyperhalogen behavior.

机构信息

Beijing National Laboratory for Molecular Sciences, State Key Laboratory of Molecular Reaction Dynamics, Institute of Chemistry, Chinese Academy of sciences, Beijing 100190, China.

出版信息

J Chem Phys. 2011 Mar 7;134(9):094309. doi: 10.1063/1.3556818.

Abstract

The electronic structures of CuBO(2)(-), Cu(BO(2))(2)(-), Cu(2)(BO(2))(-), and Cu(2)(BO(2))(2)(-) clusters were investigated using photoelectron spectroscopy. The measured vertical and adiabatic detachment energies of these clusters revealed unusual properties of Cu(BO(2))(2) cluster. With an electron affinity of 5.07 eV which is larger than that of its BO(2) superhalogen (4.46 eV) building-block, Cu(BO(2))(2) can be classified as a hyperhalogen. Density functional theory based calculations were carried out to identify the ground state geometries and study the electronic structures of these clusters. Cu(BO(2)) and Cu(BO(2))(2) clusters were found to form chainlike structures in both neutral and anionic forms. Cu(2)(BO(2)) and Cu(2)(BO(2))(2) clusters, on the other hand, preferred a chainlike structure in the anionic form but a closed ringlike structure in the neutral form. Equally important, substantial differences between adiabatic detachment energies and electron affinities were found, demonstrating that correct interpretation of the experimental photoelectron spectroscopy data requires theoretical support not only in determining the ground state geometry of neutral and anionic clusters, but also in identifying their low lying isomers.

摘要

采用光电子能谱法研究了 CuBO(2)(-), Cu(BO(2))(2)(-), Cu(2)(BO(2))(-), 和 Cu(2)(BO(2))(2)(-) 团簇的电子结构。这些团簇的测量垂直和绝热离解能揭示了 Cu(BO(2))(2)团簇的异常性质。其电子亲和能为 5.07 eV,大于其 BO(2)超卤素(4.46 eV)构筑块,Cu(BO(2))(2)可归类为超卤素。基于密度泛函理论的计算用于确定这些团簇的基态几何形状和研究其电子结构。发现 Cu(BO(2))和 Cu(BO(2))(2)团簇在中性和阴离子形式下均形成链状结构。另一方面,Cu(2)(BO(2)) 和 Cu(2)(BO(2))(2)团簇在阴离子形式下更喜欢链状结构,但在中性形式下更喜欢闭环状结构。同样重要的是,发现绝热离解能和电子亲和能之间存在显著差异,这表明正确解释实验光电子能谱数据不仅需要在确定中性和阴离子团簇的基态几何形状方面提供理论支持,还需要在确定它们的低能异构体方面提供理论支持。

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