Department of Physics and Biophysics, Wrocław University of Environmental and Life Sciences, ul. Norwida 25, 50-373 Wrocław, Poland.
Department of Physical and Quantum Chemistry, Wrocław University of Science and Technology, Wyb. Wyspiańskiego 27, 50-370 Wrocław, Poland.
J Chem Phys. 2023 May 7;158(17). doi: 10.1063/5.0142656.
Local density functional theory derivatives of the electron density have been calculated analytically for the set of canonical hydrogenic orbitals; original solutions have been obtained using the novel density gradient theorem. Results for the first and second derivatives of electron density over N (number of electrons) and over μ (chemical potential) have been demonstrated. Calculations of the state functions ΔN, ΔE, and Δμ disturbed by an external potential Δv(r) have been obtained via the concept of alchemical derivatives. The local softness s(r) and local hypersoftness [ds(r)/dN]v have been proved to provide crucial chemical information on the sensitivity of orbital density to the disturbance of the external potential Δv(r), leading to electron exchange ΔN and the corresponding changes of the state functions ΔE, Δμ. The results are fully compatible with the well-understood character of atomic orbitals in chemistry and open a perspective to applications to atoms, free or bonded.
已针对正则氢原子轨道集解析地计算了电子密度的局域密度泛函理论导数;使用新颖的密度梯度定理获得了原始解。展示了电子密度关于 N(电子数)和关于 μ(化学势)的一阶和二阶导数的结果。通过炼金术导数的概念,获得了由外部势 Δv(r) 干扰的状态函数 ΔN、ΔE 和 Δμ 的计算结果。已证明局域软度 s(r) 和局域超软度 [ds(r)/dN]v 为轨道密度对外部势 Δv(r) 的干扰的敏感性提供了关键的化学信息,导致电子交换 ΔN 以及状态函数 ΔE、Δμ 的相应变化。结果与化学中原子轨道的已知特性完全兼容,并为应用于原子(自由或键合)开辟了前景。