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稀有气体和氮气的甲基阳离子亲和力以及重氮甲烷的生成热。

Methyl cation affinities of rare gases and nitrogen and the heat of formation of diazomethane.

作者信息

Dixon David A, de Jong Wibe A, Peterson Kirk A, McMahon Terrance B

机构信息

Department of Chemistry, Shelby Hall, P.O. Box 870336, University of Alabama, Tuscaloosa, Alabama 35487-0336, USA.

出版信息

J Phys Chem A. 2005 May 12;109(18):4073-80. doi: 10.1021/jp044561e.

Abstract

The methyl cation affinities of the rare gases have been calculated at 0 and 298 K by using coupled cluster theory including noniterative, quasiperturbative triple excitations with the new correlation-consistent basis sets for Xe up through aug-cc-pV5Z in some cases. To achieve near chemical accuracy (+/-1 kcal/mol) in the thermodynamic properties, we add to the estimated complete basis set valence binding energies, based on frozen core coupled cluster theory energies, two corrections: (1) a core/valence correction and (2) a scalar relativistic correction. Vibrational zero-point energies were computed at the coupled cluster level of theory at the CCSD(T)/aug-cc-pVDZ level. The calculated rare gas methyl cation affinities (MCA in kcal/mol) at 298 K are the following: MCA(He) = 1.7, MCA(Ne) = 2.5, MCA(Ar) = 16.9, MCA(Kr) = 25.5, and MCA(Xe) = 36.6. Because of the importance of the MCA(N(2)) in the experimental measurements of the MCA scale, we calculated a number of quantities associated with CH(3)N(2)(+) and CH(2)N(2). The calculated values for diazomethane at 298 K are: DeltaH(f)(CH(2)N(2)) = 65.3 kcal/mol, PA(CH(2)N(2)) = 211.9 kcal/mol, and MCA(N(2)) = 43.2 kcal/mol.

摘要

通过使用耦合簇理论,包括非迭代、准微扰三重激发,并在某些情况下使用新的相关一致基组直至Xe的aug-cc-pV5Z,计算了稀有气体在0和298K时的甲基阳离子亲和力。为了在热力学性质上达到接近化学精度(±1 kcal/mol),我们基于冻结核心耦合簇理论能量,在估计的完全基组价层结合能上添加了两个校正项:(1)核心/价层校正和(2)标量相对论校正。振动零点能在CCSD(T)/aug-cc-pVDZ理论水平的耦合簇层次上进行计算。298K时计算得到的稀有气体甲基阳离子亲和力(以kcal/mol为单位的MCA)如下:MCA(He)=1.7,MCA(Ne)=2.5,MCA(Ar)=16.9,MCA(Kr)=25.5,MCA(Xe)=36.6。由于MCA(N₂)在MCA标度的实验测量中的重要性,我们计算了一些与CH₃N₂⁺和CH₂N₂相关的量。298K时重氮甲烷的计算值为:ΔH(f)(CH₂N₂)=65.3 kcal/mol,PA(CH₂N₂)=211.9 kcal/mol,MCA(N₂)=43.2 kcal/mol。

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