Li Juan, Yang Jie, Mo Yuxiang, Lau K C, Qian X M, Song Y, Liu Jianbo, Ng C Y
Key Laboratory for Atomic and Molecular Nanosciences, Department of Physics, Tsinghua University, Beijing 10084, China.
J Chem Phys. 2007 May 14;126(18):184304. doi: 10.1063/1.2730829.
The pulsed field ionization-photoelectron (PFI-PE) spectrum of bromochloromethane (CH2BrCl) in the region of 85,320-88,200 cm-1 has been measured using vacuum ultraviolet laser. The vibrational structure resolved in the PFI-PE spectrum was assigned based on ab initio quantum chemical calculations and Franck-Condon factor predictions. At energies 0-1400 cm-1 above the adiabatic ionization energy (IE) of CH2BrCl, the Br-C-Cl bending vibration progression (nu1+=0-8) of CH2BrCl+ is well resolved and constitutes the major structure in the PFI-PE spectrum, whereas the spectrum at energies 1400-2600 cm-1 above the IE(CH2BrCl) is found to exhibit complex vibrational features, suggesting perturbation by the low lying excited CH2BrCl+(A 2A") state. The assignment of the PFI-PE vibrational bands gives the IE(CH2BrCl)=85,612.4+/-2.0 cm-1 (10.6146+/-0.0003 eV) and the bending frequencies nu1+(a1')=209.7+/-2.0 cm-1 for CH2BrCl+(X2A'). We have also examined the dissociative photoionization process, CH2BrCl+hnu-->CH2Cl++Br+e-, in the energy range of 11.36-11.57 eV using the synchrotron based PFI-PE-photoion coincidence method, yielding the 0 K threshold or appearance energy AE(CH2Cl+)=11.509+/-0.002 eV. Combining the 0 K AE(CH2Cl+) and IE(CH2BrCl) values obtained in this study, together with the known IE(CH2Cl), we have determined the 0 K bond dissociation energies (D0) for CH2Cl+-Br (0.894+/-0.002 eV) and CH2Cl-Br (2.76+/-0.01 eV). We have also performed CCSD(T, full)/complete basis set (CBS) calculations with high-level corrections for the predictions of the IE(CH2BrCl), AE(CH2Cl+), IE(CH2Cl), D0(CH2Cl+-Br), and D0(CH2Cl-Br). The comparison between the theoretical predictions and experimental determinations indicates that the CCSD(T, full)/CBS calculations with high-level corrections are highly reliable with estimated error limits of <17 meV.
利用真空紫外激光测量了溴氯甲烷(CH₂BrCl)在85320 - 88200 cm⁻¹区域的脉冲场电离 - 光电子(PFI - PE)光谱。基于从头算量子化学计算和弗兰克 - 康登因子预测,对PFI - PE光谱中分辨出的振动结构进行了归属。在高于CH₂BrCl绝热电离能(IE)0 - 1400 cm⁻¹的能量范围内,CH₂BrCl⁺的Br - C - Cl弯曲振动序列(ν₁⁺ = 0 - 8)分辨良好,构成了PFI - PE光谱中的主要结构,而在高于IE(CH₂BrCl) 1400 - 2600 cm⁻¹的能量范围内的光谱表现出复杂的振动特征,表明受到低激发CH₂BrCl⁺(A²A")态的扰动。PFI - PE振动带的归属给出IE(CH₂BrCl)=85612.4±2.0 cm⁻¹(10.6146±0.0003 eV)以及CH₂BrCl⁺(X²A')的弯曲频率ν₁⁺(a₁') = 209.7±2.0 cm⁻¹。我们还使用基于同步加速器的PFI - PE - 光离子符合方法,在11.36 - 11.57 eV的能量范围内研究了离解光电离过程CH₂BrCl + hν→CH₂Cl⁺ + Br + e⁻,得到0 K阈值或出现能AE(CH₂Cl⁺)=11.509±0.002 eV。结合本研究中获得的0 K AE(CH₂Cl⁺)和IE(CH₂BrCl)值,以及已知的IE(CH₂Cl),我们确定了CH₂Cl⁺ - Br(0.894±0.002 eV)和CH₂Cl - Br(2.76±0.01 eV)的0 K键解离能(D₀)。我们还进行了具有高级校正的CCSD(T, full)/完全基组(CBS)计算,以预测IE(CH₂BrCl)、AE(CH₂Cl⁺)、IE(CH₂Cl)、D₀(CH₂Cl⁺ - Br)和D₀(CH₂Cl - Br)。理论预测与实验测定之间的比较表明,具有高级校正的CCSD(T, full)/CBS计算高度可靠,估计误差限<17 meV。