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
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.