Zaklika Jarosław, Hładyszowski Jerzy, Ordon Piotr, Komorowski Ludwik
Department of Physical and Quantum Chemistry, Wrocław University of Science and Technology, Wyb. Wyspiańskiego 27, 50-370 Wrocław, Poland.
Department of Physical Chemistry and Biophysics, Wrocław Medical University, ul. Borowska 211 A, 50-556 Wrocław, Poland.
ACS Omega. 2022 Feb 25;7(9):7745-7758. doi: 10.1021/acsomega.1c06540. eCollection 2022 Mar 8.
Important reactivity measures such as the local softness, the Fukui function, and the global hardness have been calculated directly from first principles with the use of the electron density function, beyond the finite difference approximation. Our recently derived density gradient theorem and the principle of nearsightedness of the electronic matter have been instrumental in obtaining the original, albeit approximate, result on the local softness of an atom. By integration of the local softness (), we obtain the global softness and the Fukui function () = ()/. Local and global softness values have also been calculated analytically for the basic hydrogenic orbitals; the general relation to the atomic number = σ has been demonstrated, with constants σ characteristic for each orbital type. Global hardness η = 1/ calculated for atoms and ions has been favorably tested against its conventional measure given by the finite difference approximation: ( - ). Calculated test results for atoms and ions in rows 1-4 of the periodic table have been presented.
诸如局部软度、福井函数和全局硬度等重要的反应活性度量,已超越有限差分近似,直接基于第一性原理利用电子密度函数进行了计算。我们最近推导出的密度梯度定理以及电子物质的近视原理,对于获得关于原子局部软度的原始(尽管是近似的)结果起到了重要作用。通过对局部软度()进行积分,我们得到了全局软度 以及福井函数()=()/ 。还对基本氢原子轨道进行了解析计算局部和全局软度值;已证明与原子序数 = σ 的一般关系,其中常数 σ 对于每种轨道类型具有特征性。针对原子和离子计算得到的全局硬度 η = 1/ ,已与通过有限差分近似给出的传统度量:( - )进行了良好的对比测试。已展示了元素周期表第1 - 4行中原子和离子的计算测试结果。