Burton Hugh G A
Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QZ, United Kingdom.
J Chem Phys. 2021 Mar 21;154(11):111103. doi: 10.1063/5.0043105.
Electron correlation effects play a key role in stabilizing two-electron atoms near the critical nuclear charge, representing the smallest charge required to bind two electrons. However, deciphering the importance of these effects relies on fully understanding the uncorrelated Hartree-Fock description. We investigate the properties of the ground state wave function in the small nuclear charge limit using various symmetry-restricted Hartree-Fock formalisms. We identify the nuclear charge where spin-symmetry breaking occurs to give an unrestricted wave function that predicts an inner and outer electron. We also identify closed-shell and unrestricted critical nuclear charges where the highest occupied orbital energy becomes zero and the electron density detaches from the nucleus. Finally, we identify the importance of fractional spin errors and static correlation for small nuclear charges.
电子关联效应在稳定接近临界核电荷的双电子原子中起着关键作用,临界核电荷代表束缚两个电子所需的最小电荷。然而,要解读这些效应的重要性,依赖于对无关联的哈特里 - 福克描述的全面理解。我们使用各种对称性受限的哈特里 - 福克形式体系,研究小核电荷极限下基态波函数的性质。我们确定发生自旋对称性破缺以给出预测内、外电子的无限制波函数时的核电荷。我们还确定最高占据轨道能量变为零且电子密度从原子核分离时的闭壳层和无限制临界核电荷。最后,我们确定小核电荷下分数自旋误差和静态关联的重要性。