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Dissociation curves and binding energies of diatomic transition metal carbides from density functional theory

机译:基于密度泛函理论的双原子过渡金属碳化物的解离曲线和结合能

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The computational description of the catalytic processes on the surface of transition metals (TMs) requires methods capable of accurate prediction of the bond forming and breaking between the atoms of metal and other elements. In our previous report [Goel and Masunov, J Chem Phys, 129, 214302, 2008], we studied TM hydrides and found that Boese-Martin functional for kinetics (BMK) combined with broken symmetry approach described dissociation process more accurately than multireference wavefunction theory (WFT) methods and some other functionals. Here, we investigate the binding energy, geometry, electronic structure, and potential energy curves for diatomic TM carbides using several exchange-correlation functionals. The functionals that include explicit dependence on the kinetic energy density (τ-functionals) are considered, among others. We have found M05-2x performance to be the best, followed by BMK, when compared with experimental and high level WFT energetics. This agreement deteriorates quickly for other functionals when the fraction of the Hartree-Fock exchange is decreased. Scalar relativistic corrections yield mixed results for bond lengths and bond energies. The natural bond orbital analysis provides useful insight in description of stable spin state over others in these diatomics.
机译:过渡金属(TM)表面催化过程的计算描述需要能够准确预测金属原子与其他元素之间的键形成和断裂的方法。在我们以前的报告中[Goel and Masunov,J Chem Phys,129,214302,2008],我们研究了TM氢化物,发现Boese-Martin动力学动力学(BMK)结合破碎对称方法比多参考波函数理论更准确地描述了离解过程。 (WFT)方法和其他一些功能。在这里,我们使用几种交换相关函数研究双原子TM碳化物的结合能,几何形状,电子结构和势能曲线。其中考虑了包括对动能密度的显式依赖的功能(τ-功能)。与实验和高级WFT能量学相比,我们发现M05-2x性能是最好的,其次是BMK。当减少Hartree-Fock交换的比例时,此协议对于其他功能会迅速恶化。标量相对论校正产生键长度和键能量的混合结果。天然键轨道分析为描述稳定的自旋态提供了有用的见解,而这些自旋比其他双原子论更稳定。

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