Institute of Physical and Theoretical Chemistry, Wrocław University of Technology, Wyb. Wyspiańskiego 27, 50-370, Wrocław, Poland.
J Mol Model. 2013 Oct;19(10):4203-7. doi: 10.1007/s00894-013-1812-1. Epub 2013 Mar 23.
The reaction force and the electronic flux, first proposed by Toro-Labbé et al. (J Phys Chem A 103:4398, 1999) have been expressed by the existing conceptual DFT apparatus. The critical points (extremes) of the chemical potential, global hardness and softness have been identified by means of the existing and computable energy derivatives: the Hellman-Feynman force, nuclear reactivity and nuclear stiffness. Specific role of atoms at the reaction center has been unveiled by indicating an alternative method of calculation of the reaction force and the reaction electronic flux. The electron dipole polarizability on the IRC has been analyzed for the model reaction HF + CO→HCOF. The electron polarizability determined on the IRC α e (ξ) was found to be reasonably parallel to the global softness curve S(ξ). The softest state on the IRC (not TS) coincides with zero electronic flux.
Toro-Labbé 等人首次提出的反作用力和电子通量已被现有的概念密度泛函理论(DFT)仪器所表达。通过现有的和可计算的能量导数:赫尔曼-费曼力、核反应性和核刚性,已经确定了化学势、全局硬度和软度的临界点(极值)。通过指出反应力和反应电子通量的另一种计算方法,揭示了反应中心原子的特定作用。对 HF + CO→HCOF 模型反应进行了 IRC 上的电子偶极极化率分析。在 IRC 上确定的电子极化率α e(ξ)与全局软度曲线 S(ξ)相当平行。IRC 上最软的状态(非过渡态)与零电子通量重合。