论文标题

通过线性响应形式主义的过渡金属氧化物的Hubbard U和Hund J值的高通量测定

High-throughput determination of Hubbard U and Hund J values for transition metal oxides via linear response formalism

论文作者

Moore, Guy C., Horton, Matthew K., Ganose, Alexander M., Siron, Martin, Linscott, Edward, O'Regan, David D., Persson, Kristin A.

论文摘要

DFT+U为使用常规近似密度功能理论(DFT)描述相关的电子状态时,为自我交互误差(SIE)提供了方便,具有成本效益的校正。 DFT+U(+J)计算的成功取决于其Hubbard U和Hund的J参数的准确确定,并且线性响应(LR)方法学已证明是计算有效且准确地计算这些参数。这项研究提供了2000多个磁性转变金属氧化物(TMOS)的代表性集中的过渡金属D-电子状态的U和J值的高通量计算分析,为使用DFT+U用于研究过渡金属氧化物的研究人员提供了参考框架。为了进行这项高通量研究,开发了用于在大量平行超级计算体系结构上自动计算U和J值的原子工作流。为了证明该工作流的应用,使用计算的Ni-D和O-P状态的计算的Hubbard U和Hund J值计算了多效橄榄石Linipo4的自旋磁性结构和单位细胞参数,并将其与实验进行比较。 Ni-D U和J校正都对Ni矩倾斜角都有很强的影响。此外,包括O-P U值包括计算的晶格参数和实验之间的一致性显着改善。

DFT+U provides a convenient, cost-effective correction for the self-interaction error (SIE) that arises when describing correlated electronic states using conventional approximate density functional theory (DFT). The success of a DFT+U(+J) calculation hinges on the accurate determination of its Hubbard U and Hund's J parameters, and the linear response (LR) methodology has proven to be computationally effective and accurate for calculating these parameters. This study provides a high-throughput computational analysis of the U and J values for transition metal d-electron states in a representative set of over 2000 magnetic transition metal oxides (TMOs), providing a frame of reference for researchers who use DFT+U to study transition metal oxides. In order to perform this high-throughput study, an atomate workflow is developed for calculating U and J values automatically on massively parallel supercomputing architectures. To demonstrate an application of this workflow, the spin-canting magnetic structure and unit cell parameters of the multiferroic olivine LiNiPO4 are calculated using the computed Hubbard U and Hund J values for Ni-d and O-p states, and are compared with experiment. Both the Ni-d U and J corrections have a strong effect on the Ni-moment canting angle. Additionally, including a O-p U value results in a significantly improved agreement between the computed lattice parameters and experiment.

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