首页> 外文期刊>Journal of chemical theory and computation: JCTC >Four-Component Relativistic Density-Functional Theory Calculations of Nuclear Spin-Rotation Constants: Relativistic Effects in p-Block Hydrides
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Four-Component Relativistic Density-Functional Theory Calculations of Nuclear Spin-Rotation Constants: Relativistic Effects in p-Block Hydrides

机译:自旋旋转常数的四分量相对论密度泛函理论计算:p嵌段氢化物的相对论效应

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We present an implementation of the nuclear spin-rotation (SR) constants based on the relativistic four-component Dirac-Coulomb Hamiltonian. This formalism has been implemented in the framework of the Hartree-Fock and Kohn-Sham theory, allowing assessment of both pure and hybrid exchange-correlation functionals. In the density-functional theory (DFT) implementation of the response equations, a noncollinear generalized gradient approximation (GGA) has been used. The present approach enforces a restricted kinetic balance condition for the smallcomponent basis at the integral level, leading to very efficient calculations of the property. We apply the methodology to study relativistic effects on the spin-rotation constants by performing calculations on XHn (n = 1-4) for all elements X in the p-block of the periodic table and comparing the effects of relativity on the nuclear SR tensors to that observed for the nuclear magnetic shielding tensors. Correlation effects as described by the density-functional theory are shown to be significant for the spinrotation constants, whereas the differences between the use of GGA and hybrid density functionals are much smaller. Our calculated relativistic spin-rotation constants at the DFT level of theory are only in fair agreement with available experimental data. It is shown that the scaling of the relativistic effects for the spin-rotation constants (varying between Z(3.8) and Z(4.5)) is as strong as for the chemical shieldings but with a much smaller prefactor.
机译:我们提出了基于相对论四分量狄拉克-库仑哈密顿量的核自旋旋转(SR)常数的实现。这种形式主义已在Hartree-Fock和Kohn-Sham理论的框架内实施,从而可以评估纯交换混合功能和混合交换相关功能。在响应方程的密度泛函理论(DFT)实施中,已使用非共线广义梯度逼近(GGA)。本方法对小组分基础在积分水平上施加了受限的动平衡条件,从而导致非常有效的性质计算。我们通过对元素周期表p块中所有元素X进行XHn(n = 1-4)计算并比较相对论对核SR张量的影响,应用该方法来研究相对论对自旋旋转常数的影响与观察到的核磁屏蔽张量相同。如密度泛函理论所述,相关效应对于自旋旋转常数非常重要,而使用GGA和混合密度泛函之间的差异则小得多。我们在DFT理论水平上计算出的相对论自旋旋转常数仅与可用的实验数据完全吻合。结果表明,自旋旋转常数的相对论效应的标度(在Z(3.8)和Z(4.5)之间变化)与化学屏蔽一样强,但前置因子要小得多。

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