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首页> 外文期刊>Npj Computational Materials >Spin-spin interactions in defects in solids from mixed all-electron and pseudopotential first-principles calculations
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Spin-spin interactions in defects in solids from mixed all-electron and pseudopotential first-principles calculations

机译:来自混合全电子和伪电子第一原理计算的固体缺陷中的旋转旋转相互作用

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Understanding the quantum dynamics of spin defects and their coherence properties requires an accurate modeling of spin-spin interaction in solids and molecules, for example by using spin Hamiltonians with parameters obtained from first principles calculations. We present a real-space approach based on density functional theory for the calculation of spin-Hamiltonian parameters, where only selected atoms are treated at the all-electron level, while the rest of the system is described with the pseudopotential approximation. Our approach permits calculations for systems containing more than 1000 atoms, as demonstrated for defects in diamond and silicon carbide. We show that only a small number of atoms surrounding the defect needs to be treated at the all-electron level, in order to obtain an overall all-electron accuracy for hyperfine and zero-field splitting tensors. We also present results for coherence times, computed with the cluster correlation expansion method, highlighting the importance of accurate spin-Hamiltonian parameters for quantitative predictions of spin dynamics.
机译:理解旋转缺陷的量子动态及其相干性能需要精确建模固体和分子中的旋转旋转相互作用,例如通过使用从第一原理计算中获得的参数的旋转汉密尔顿人。我们提出了一种基于密度泛函理论的实际空间方法,用于计算自旋 - 哈密顿参数,其中仅在全电子电平处处理选定的原子,而这些系统的其余部分被伪化近似描述。我们的方法允许计算含有1000多个原子的系统,如金刚石和碳化硅中的缺陷所证明的。我们表明,只需要在全电子电平处处理围绕缺陷的少量原子,以便获得超细和零场分裂张量的整体全电子精度。我们还提出了具有集群相关扩展方法的相干时间的结果,突出了精确的自旋汉密特兰参数的重要性,以便进行自旋动态的定量预测。

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