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C₂分子的X (¹Σg⁺)、B (¹Δg) 和B'(¹Σg⁺) 态的全组态相互作用势能曲线:近似方法面临的挑战

Full configuration interaction potential energy curves for the X (1)Sigma(g) (+), B (1)Delta(g), and B(') (1)Sigma(g) (+) states of C(2): a challenge for approximate methods.

作者信息

Abrams Micah L, Sherrill C David

机构信息

Center for Computational Molecular Science and Technology, School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia 30332-0400, USA.

出版信息

J Chem Phys. 2004 Nov 15;121(19):9211-9. doi: 10.1063/1.1804498.

Abstract

The C(2) molecule exhibits unusual bonding and several low-lying excited electronic states, making the prediction of its potential energy curves a challenging test for quantum chemical methods. We report full configuration interaction results for the X (1)Sigma(g) (+), B (1)Delta(g), and B(') (1)Sigma(g) (+) states of C(2), which exactly solve the electronic Schrodinger equation within the space spanned by a 6-31G( *) basis set. Within the D(2h) subgroup used by most electronic structure programs, these states all have the same symmetry ((1)A(g)), and all three states become energetically close for interatomic distances beyond 1.5 A. The quality of several single-reference ab initio methods is assessed by comparison to the benchmark results. Unfortunately, even coupled-cluster theory through perturbative triples using an unrestricted Hartree-Fock reference exhibits large nonparallelity errors (>20 kcal mol(-1)) for the ground state. The excited states are not accurately modeled by any commonly used single-reference method, nor by configuration interaction including full quadruple substitutions. The present benchmarks will be helpful in assessing theoretical methods designed to break bonds in ground and excited electronic states.

摘要

C₂分子展现出异常的键合以及几个低激发电子态,这使得预测其势能曲线成为对量子化学方法的一项具有挑战性的测试。我们报告了C₂分子的X¹Σg⁺、B¹Δg和B'¹Σg⁺态的完全组态相互作用结果,这些结果在由6 - 31G(*)基组所跨越的空间内精确求解了电子薛定谔方程。在大多数电子结构程序所使用的D₂h子群内,这些态都具有相同的对称性(¹Ag),并且对于原子间距超过1.5 Å的情况,所有这三个态在能量上变得接近。通过与基准结果进行比较来评估几种单参考从头算方法的质量。不幸的是,即使是使用无限制哈特里 - 福克参考的微扰三重态耦合簇理论,对于基态也表现出较大的非平行性误差(>20 kcal mol⁻¹)。任何常用的单参考方法,以及包括完全四重取代的组态相互作用,都不能准确地模拟激发态。目前的基准将有助于评估旨在断裂基态和激发电子态中化学键的理论方法。

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