- Address
- 305-0044 茨城県つくば市並木1-1 [アクセス]
研究内容
- Keywords
theoretical control and design of electronic properties
所属学会
日本物理学会
ナノアーキテクトニクス材料研究センター
Reaistic modelling of complex magnetic materials
Electronic structure, Magnetism, Multiferroics, Exchange interactions
概要
Deep microscopic understanding of electronic and magnetic properties through the combined use of first‑principles electronic‑structure calculations and model‑based theoretical analysis;
Microscopic mechanisms governing the coupling between electric polarization and magnetic order in diverse multiferroic systems;
Unified microscopic theory of interatomic exchange interactions in complex magnetic materials;
Microscopic origin and consequences of time‑reversal symmetry breaking in unconventional antiferromagnets;
Microscopic mechanism of ferromagnetic ferroelectricity induced by orbital ordering.
新規性・独創性
Systematic methodology for interpreting first‑principles electronic‑structure calculations through rigorously constructed microscopic models;
Unified microscopic theory of interatomic exchange interactions across complex magnetic materials;
Microscopic superexchange theory explaining magnetically driven electric polarization in multiferroics;
Symmetry properties of the relativistic spin–orbit interaction underlying time‑reversal symmetry breaking in unconventional antiferromagnets;
Microscopic mechanism of ferromagnetic ferroelectricity driven by orbital ordering.
内容




Realistic microscopic models are derived from first‑principles electronic‑structure calculations for the specific groups of electronic states that govern the phenomena of interest. This approach retains the full material specificity of first‑principles methods while providing microscopic insight through model analysis. The methodology has been successfully applied to a broad range of materials and properties, including the mutual control of ferroelectricity and magnetism in multiferroic systems, the manipulation of electric polarization and magnetic textures in compounds with complex skyrmionic structures, and the design of magnetic materials without conventional 3d elements. It further enables the microscopic description of time‑reversal symmetry breaking in unconventional antiferromagnets, as well as the identification of ferromagnetic ferroelectricity driven by orbital ordering.
Explaining the anomalous Hall effect (AHE) in antiferromagnetic materials remains a central challenge in condensed‑matter physics. A symmetry‑based microscopic framework has been developed to clarify why certain centrosymmetric antiferromagnets nevertheless exhibit a finite AHE. In antipolarly distorted lattices, the inversional invariance of the relativistic spin–orbit interaction permits the antiferromagnetic state to be mapped onto an effective ferromagnet within an appropriate local coordinate frame. This mapping naturally accounts for the emergence of conventionally ferromagnetic responses—including the AHE and a net orbital magnetization—even though the spin magnetization vanishes in the global frame.
まとめ
Besides deep fundamental understanding, the results can potentially used for developing novel electronic devices related to low-power nanoelectronics and data storage, as well as the synthesis of new type of magnetic materials without transition metal or rare earth elements. The developed computer packages can be applied for the wide class of magnetic materials.

