Laboratory of Pharmaceutical Chemistry, Faculty of Chemistry, Autonomous University of Yucatan, 41 No. 421 Col. Industrial, C.P. 97150, Merida, Yucatan, Mexico.
Molecules. 2012 Apr 20;17(4):4661-71. doi: 10.3390/molecules17044661.
The energy change on each Occupied Molecular Orbital as a function of rotation about the C-C bond in ethane was studied using the B3LYP, mPWB95 functional and MP2 methods with different basis sets. Also, the effect of the ZPE on rotational barrier was analyzed. We have found that σ and π energies contribution stabilize a staggered conformation. The σ(s) molecular orbital stabilizes the staggered conformation while the stabilizes the eclipsed conformation and destabilize the staggered conformation. The π(z) and molecular orbitals stabilize both the eclipsed and staggered conformations, which are destabilized by the π(v) and molecular orbitals. The results show that the method of calculation has the effect of changing the behavior of the energy change in each Occupied Molecular Orbital energy as a function of the angle of rotation about the C-C bond in ethane. Finally, we found that if the molecular orbital energy contribution is deleted from the rotational energy, an inversion in conformational preference occurs.
使用 B3LYP、mPWB95 函数和不同基组的 MP2 方法研究了乙烷中 C-C 键旋转时每个占据分子轨道的能量变化。还分析了 ZPE 对旋转势垒的影响。我们发现 σ 和 π 能量贡献稳定了交错构象。σ(s)分子轨道稳定了交错构象,而π(z)和分子轨道稳定了交错构象和重叠构象,π(v)和分子轨道则使它们不稳定。结果表明,计算方法改变了每个占据分子轨道能量随乙烷中 C-C 键旋转角度的变化行为。最后,我们发现如果从旋转能量中删除分子轨道能量贡献,则构象偏好会发生反转。