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首页> 外文期刊>The Journal of Chemical Physics >Communication: xDH double hybrid functionals can be qualitatively incorrect for non-equilibrium geometries: Dipole moment inversion and barriers to radical-radical association using XYG3 and XYGJ-OS
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Communication: xDH double hybrid functionals can be qualitatively incorrect for non-equilibrium geometries: Dipole moment inversion and barriers to radical-radical association using XYG3 and XYGJ-OS

机译:通信:XDH双混合功能对于非平衡几何形状可以定性不正确:使用XYG3和XYGJ-OS的自由基 - 激进关联的偶极力矩反转和障碍

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摘要

Double hybrid (DH) density functionals are amongst the most accurate density functional approximations developed so far, largely due to the incorporation of correlation effects from unoccupied orbitals via second order perturbation theory (PT2). The xDH family of DH functionals calculate energy directly from orbitals optimized by a lower level approach like B3LYP, without self-consistent optimization. XYG3 and XYGJ-OS are two widely used xDH functionals that are known to be quite accurate at equilibrium geometries. Here, we show that the XYG3 and XYGJ-OS functionals can be ill behaved for stretched bonds well beyond the Coulson-Fischer point, predicting unphysical dipole moments and humps in potential energy curves for some simple systems like the hydrogen fluoride molecule. Numerical experiments and analysis show that these failures are not due to PT2. Instead, a large mismatch at stretched bond-lengths between the reference B3LYP orbitals and the optimized orbitals associated with the non-PT2 part of XYG3 leads to an unphysically large non-Hellman-Feynman contribution to first order properties like forces and electron densities. Published by AIP Publishing.
机译:双杂交(DH)密度函数是到目前为止开发的最准确的密度函数近似,主要是由于通过二阶扰动理论(PT2)从未占用的轨道掺入相关效应。 XDH系列的DH族族的轨道直接从通过B3LYP等较低水平的方法优化的轨道从轨道计算的能量,没有自一致的优化。 XYG3和XYGJ-OS是两个广泛使用的XDH功能,已知在平衡几何形状中非常准确。在这里,我们表明,XYG3和XYGJ-OS功能对于远远超出Coulson-Fischer Point的伸展粘合,预测一些像氟化氢分子这样简单的系统的潜在能量曲线中的未经理偶极矩和驼峰的表现不佳。数值实验和分析表明,这些故障不是由于PT2。相反,在参考B3LYP轨道和与非PT2部分的非PT2部分相关的优化轨道之间的拉伸粘合长度的大错位导致对像力和电子密度等第一订单属性的不受不核有的非地狱 - 费雯曼贡献。通过AIP发布发布。

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