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Spin-state splittings, highest-occupied-molecular-orbital and lowest-unoccupied-molecular-orbital energies, and chemical hardness.

机译:自旋态分裂,最高占据分子轨道和最低未占分子轨道能量,以及化学硬度。

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摘要

It is known that the exact density functional must give ground-state energies that are piecewise linear as a function of electron number. In this work we prove that this is also true for the lowest-energy excited states of different spin or spatial symmetry. This has three important consequences for chemical applications: the ground state of a molecule must correspond to the state with the maximum highest-occupied-molecular-orbital energy, minimum lowest-unoccupied-molecular-orbital energy, and maximum chemical hardness. The beryllium, carbon, and vanadium atoms, as well as the CH(2) and C(3)H(3) molecules are considered as illustrative examples. Our result also directly and rigorously connects the ionization potential and electron affinity to the stability of spin states.
机译:众所周知,精确的密度泛函必须给出作为电子数函数的分段线性基态能量。在这项工作中,我们证明对于不同自旋或空间对称性的最低能量激发态也是如此。这对于化学应用具有三个重要的后果:分子的基态必须对应于具有最大的最大分子轨道能量,最小的最小的非分子轨道能量以及最大的化学硬度的状态。铍,碳和钒原子以及CH(2)和C(3)H(3)分子被视为示例。我们的结果还直接和严格地将电离势和电子亲和力与自旋态的稳定性联系起来。

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