基态
密度泛函理论
铁磁性
反铁磁性
铁磁性
工作流程
水准点(测量)
计算机科学
凝聚态物理
吞吐量
种姓
统计物理学
物理
材料科学
磁化
磁场
原子物理学
量子力学
地质学
无线
数据库
电信
大地测量学
作者
Matthew K. Horton,Joseph H. Montoya,Miao Liu,Kristin A. Persson
标识
DOI:10.1038/s41524-019-0199-7
摘要
Abstract We present a robust, automatic high-throughput workflow for the calculation of magnetic ground state of solid-state inorganic crystals, whether ferromagnetic, antiferromagnetic or ferrimagnetic, and their associated magnetic moments within the framework of collinear spin-polarized Density Functional Theory. This is done through a computationally efficient scheme whereby plausible magnetic orderings are first enumerated and prioritized based on symmetry, and then relaxed and their energies determined through conventional DFT + U calculations. This automated workflow is formalized using the atomate code for reliable, systematic use at a scale appropriate for thousands of materials and is fully customizable. The performance of the workflow is evaluated against a benchmark of 64 experimentally known mostly ionic magnetic materials of non-trivial magnetic order and by the calculation of over 500 distinct magnetic orderings. A non-ferromagnetic ground state is correctly predicted in 95% of the benchmark materials, with the experimentally determined ground state ordering found exactly in over 60% of cases. Knowledge of the ground state magnetic order at scale opens up the possibility of high-throughput screening studies based on magnetic properties, thereby accelerating discovery and understanding of new functional materials.
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