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通过高水平电子结构计算得到的氟化氙的生成热及XeF₆的分子流动性

Heats of formation of xenon fluorides and the fluxionality of XeF(6) from high level electronic structure calculations.

作者信息

Dixon David A, de Jong Wibe A, Peterson Kirk A, Christe Karl O, Schrobilgen Gary J

机构信息

Department of Chemistry, University of Alabama, Tuscaloosa, Alabama, 35487-0336, USA.

出版信息

J Am Chem Soc. 2005 Jun 22;127(24):8627-34. doi: 10.1021/ja0423116.

Abstract

Atomization energies at 0 K and heats of formation at 0 and 298 K are predicted for XeF(+), XeF(-), XeF(2), XeF(4), XeF(5)(-), and XeF(6) from coupled cluster theory (CCSD(T)) calculations with new correlation-consistent basis sets for Xe. To achieve near chemical accuracy (+/-1 kcal/mol), up to four corrections were added to the complete basis set binding energies based on frozen core coupled cluster theory energies: a correction for core-valence effects, a correction for scalar relativistic effects, a correction for first-order atomic spin-orbit effects, and in some cases, a second-order spin-orbit correction. Vibrational zero-point energies were computed at the coupled cluster level of theory. The structure of XeF(6) is difficult to obtain with the C(3)(v)() and O(h)() structures having essentially the same energy. The O(h)() structure is only 0.19 kcal/mol below the C(3)(v)() one at the CCSD(T)/CBS level using an approximate geometry for the C(3)(v)() structure. With an optimized C(3)(v)() geometry, the C(3)(v)() structure would probably become slightly lower in energy than the O(h)() one. The calculated heats of formation for the neutral XeF(n)() fluorides are less negative than the experimental values from the equilibrium measurements by 2.0, 7.7, and 12.2 kcal/mol for n = 2, 4, and 6, respectively. For the experimental values, derived from the photoionization measurements, this discrepancy becomes even larger, suggesting a need for a redetermination of the experimental values. Evidence is presented for the fluxionality of XeF(6) caused by the presence of a sterically active, free valence electron pair on Xe.

摘要

通过耦合簇理论(CCSD(T))计算,并使用针对Xe的新的相关一致基组,预测了0 K时XeF(+)、XeF(-)、XeF₂、XeF₄、XeF₅(-)和XeF₆的雾化能以及0和298 K时的生成热。为了达到接近化学精度(±1 kcal/mol),基于冻结核心耦合簇理论能量,对完全基组结合能添加了多达四项校正:一项用于核对价电子效应的校正、一项用于标量相对论效应的校正、一项用于一阶原子自旋轨道效应的校正,并且在某些情况下,还有一项二阶自旋轨道校正。振动零点能在耦合簇理论水平上进行了计算。XeF₆的结构很难通过能量基本相同的C₃ᵥ和Oₕ结构来确定。在使用C₃ᵥ结构的近似几何构型时,在CCSD(T)/CBS水平下,Oₕ结构仅比C₃ᵥ结构低0.19 kcal/mol。采用优化的C₃ᵥ几何构型时,C₃ᵥ结构的能量可能会比Oₕ结构略低。计算得到的中性XeFₙ氟化物的生成热比平衡测量得到的实验值分别低2.0、7.7和12.2 kcal/mol(对于n = 2、4和6)。对于从光电离测量得到的实验值,这种差异甚至更大,这表明需要重新确定实验值。有证据表明,由于Xe上存在一个空间活性的自由价电子对,XeF₆具有流动性。

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