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首页> 外文期刊>The Journal of Chemical Physics >Comparison of density functionals for energy and structural differences between the high- [T-5(2g):(t(2g))(4)(e(g))(2)] and low- [(1)A(1g):(t(2g))(6)(e(g))(0)] spin states of iron(II) coordination compounds. II. More functionals and the hexaminoferro
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Comparison of density functionals for energy and structural differences between the high- [T-5(2g):(t(2g))(4)(e(g))(2)] and low- [(1)A(1g):(t(2g))(6)(e(g))(0)] spin states of iron(II) coordination compounds. II. More functionals and the hexaminoferro

机译:高[T-5(2g):( t(2g))(4)(e(g))(2)]和低[[1] A(1g)之间的能量和结构差异的密度泛函比较):( t(2g))(6)(e(g))(0)]铁(II)配位化合物的自旋态。二。更多功能和六氨基铁

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摘要

The ability of different density functionals to describe the structural and energy differences between the high- [(5)T(2)g:(t(2g))(4)(e(g))(2)] and low- [(1)A(1g):(t(2g))(6)(eg)(0)] spin states of small octahedral ferrous compounds is studied. This work is an extension of our previous study of the hexaquoferrous cation, [Fe(H2O)(6)](2)+, [J. Chem. Phys. 120, 9473 (2004)] to include a second compound-namely, the hexaminoferrous cation, [Fe(NH3)(6)](2+)-and several additional functionals. In particular, the present study includes the highly parametrized generalized gradient approximations (GGAs) known as HCTH and the meta-GGA VSXC [which together we refer to as highly parametrized density functionals (HPDFs)], now readily available in the GAUSSIAN03 program, as well as the hybrid functional PBE0. Since there are very few experimental results for these molecules with which to compare, comparison is made with best estimates obtained from second-order perturbation theory-corrected complete active space self-consistent field (CASPT2) calculations, with spectroscopy oriented configuration interaction (SORCI) calculations, and with ligand field theory (LFT) estimations. While CASPT2 and SORCI are among the most reliable ab initio methods available for this type of problem, LFT embodies many decades. of empirical experience. These three methods are found to give coherent results and provide best estimates of the adiabatic low-spin-high-spin energy difference, DeltaE(LH)(adia) of 12000-13000 cm(-1) for [Fe(H2O)(6)](2+) and 9000-11000 cm(-1) for [Fe(NH3)(6)](2+). All functionals beyond the purely local approximation produce reasonably good geometries, so long as adequate basis sets are used. In contrast, the energy splitting, DE H, is much more sensitive to the choice of functional. The local density approximation severely over stabilizes the low-spin state with respect to the high-spin state. This "density functional theory (DFT) spin pairing-energy problem" persists, but is reduced, for traditional GGAs. In contrast the hybrid functional B3LYP underestimates DeltaE(LH)(adia) by a few thousands of wave numbers. The RPBE GGA of Hammer, Hansen, and Norskov gives good results for DeltaE(LH)(adia) as do the HPDFs, especially the VSXC functional. Surprisingly the HCTH functionals actually over correct the DFT spin pairing-energy problem, destabilizing the low-spin state relative to the high-spin state. Best agreement is found for the hybrid functional PBEO. (C) 2005 American Institute of Physics.
机译:不同密度泛函描述高[[(5)T(2)g:(t(2g))(4)(e(g))(2)]和低[[研究了小的八面体亚铁化合物的(1)A(1g):( t(2g))(6)(eg((0))]自旋态。这项工作是我们先前对六亚铁阳离子[Fe(H2O)(6)](2)+,[J。化学物理120(9473(2004)]包含第二种化合物,即六氨基亚铁阳离子[Fe(NH3)(6)](2+)和其他一些功能。特别是,本研究包括称为HCTH的高度参数化的广义梯度近似(GGA)和meta-GGA VSXC [我们将其统称为高度参数化的密度泛函(HPDF)],现在可以在GAUSSIAN03程序中轻松获得,例如以及混合功能PBE0。由于这些分子几乎没有实验结果可与之进行比较,因此与通过二阶扰动理论校正的完整主动空间自洽场(CASPT2)计算以及面向光谱的组态相互作用(SORCI)获得的最佳估计值进行了比较。计算,以及配体场论(LFT)估算。虽然CASPT2和SORCI是可用于此类问题的最可靠的从头算方法,但LFT已有数十年的历史。经验的经验。发现这三种方法可以提供连贯的结果,并提供绝热的低自旋-高自旋能差,[Fe(H2O)(6)的DeltaE(LH)(adia)为12000-13000 cm(-1)的最佳估计。 )] [2+)和[Fe(NH3)(6)](2+)的9000-11000 cm(-1)。只要使用足够的基础集,除纯局部近似之外的所有函数都将产生合理的几何形状。相反,能量分配DE H对功能的选择更为敏感。局部密度近似严重地使低旋转状态相对于高旋转状态稳定。对于传统的GGA,这种“密度泛函理论(DFT)自旋配对能量问题”一直存在,但有所减少。相反,混合功能的B3LYP低估了DeltaE(LH)(adia)几千个波数。 Hammer,Hansen和Norskov的RPBE GGA与HPDF(尤其是VSXC功能)一样,对于DeltaE(LH)(adia)也具有良好的效果。令人惊讶的是,HCTH功能实际上纠正了DFT自旋配对能量问题,从而使低旋态相对于高旋态不稳定。对于混合功能PBEO,找到了最佳协议。 (C)2005美国物理研究所。

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