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有限温度下MgO中¹⁷O和²⁵Mg NMR屏蔽的第一性原理计算:固体中的转动振动效应

First-principles calculation of 17O and 25Mg NMR shieldings in MgO at finite temperature: rovibrational effect in solids.

作者信息

Rossano Stéphanie, Mauri Francesco, Pickard Chris J, Farnan Ian

机构信息

Laboratoire des Géomatériaux, Université de Marne la Vallée, CNRS FRE2455, 5 Bd Descartes, Champs/Marne, 77454 Noisy-Champs Cedex 2, France.

出版信息

J Phys Chem B. 2005 Apr 21;109(15):7245-50. doi: 10.1021/jp044251w.

DOI:10.1021/jp044251w
PMID:16851828
Abstract

The temperature dependence of (17)O and (25)Mg NMR chemical shifts in solid MgO have been calculated using a first-principles approach. Density functional theory, pseudopotentials, a plane-wave basis set, and periodic boundary conditions were used both to describe the motion of the nuclei and to compute the NMR chemical shifts. The chemical shifts were obtained using the gauge-including projector augmented wave method. In a crystalline solid, the temperature dependence is due to both (i) the variation of the averaged equilibrium structure and (ii) the fluctuation of the atoms around this structure. In MgO, the equilibrium structure at each temperature is uniquely defined by the cubic lattice parameters, which we take from experiment. We evaluate the effect of the fluctuations within a quasiharmonic approximation. In particular, the dynamical matrix, defining the harmonic Hamiltonian, has been computed for each equilibrium volume. This harmonic Hamiltonian was used to generate nuclear configurations that obey quantum statistical mechanics. The chemical shifts were averaged over these nuclear configurations. The results reproduce the previously published experimental NMR data measured on MgO between room temperature and 1000 degrees C. It is shown that the chemical shift behavior with temperature cannot be explained by thermal expansion alone. Vibrational corrections due to the fluctuations of atoms around their equilibrium position are crucial to reproduce the experimental results.

摘要

采用第一性原理方法计算了固体MgO中¹⁷O和²⁵Mg核磁共振化学位移的温度依赖性。利用密度泛函理论、赝势、平面波基组和周期性边界条件来描述原子核的运动并计算核磁共振化学位移。化学位移通过含规范投影增强波方法获得。在晶体固体中,温度依赖性源于:(i)平均平衡结构的变化;(ii)原子围绕该结构的涨落。在MgO中,每个温度下的平衡结构由立方晶格参数唯一确定,这些参数取自实验。我们在准谐近似下评估涨落的影响。特别地,针对每个平衡体积计算了定义简谐哈密顿量的动力学矩阵。该简谐哈密顿量用于生成服从量子统计力学的核构型。化学位移在这些核构型上进行平均。结果重现了之前发表的在室温至1000℃之间对MgO测量的实验核磁共振数据。结果表明,化学位移随温度的变化行为不能仅用热膨胀来解释。原子围绕其平衡位置的涨落引起的振动修正对于重现实验结果至关重要。

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