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中国物理学会期刊

Ca-Co(Zn)共掺杂对M型锶铁氧体性能影响的第一性原理计算研究

CSTR: 32037.14.aps.74.20241626

First-principles study of effects of Ca-Co (Zn) co-doping on properties of M-type strontium ferrite

CSTR: 32037.14.aps.74.20241626
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  • 六角晶系磁铅石型(M型)锶铁氧体因其独特的磁性、介电性能和热稳定性, 在永磁材料领域备受关注. 但相比于稀土永磁Nd2Fe14B材料来说, M型锶铁氧体(SrFe12O19)永磁材料的综合磁性能较低, 这极大地限制了其使用范围. 本文基于密度泛函理论的第一性原理计算方法, 结合广义梯度近似(GGA+U ), 系统研究了Ca-Co(Zn)共掺杂对M型锶铁氧体的电子结构、力学性能、导电性和磁性能的影响. 计算结果表明, Ca-Co(Zn)共掺杂SrFe12O19铁氧体均具有良好的结构稳定性和力学性能. Ca-Zn共掺杂可以使体系导电性增强, 这是因为二价Zn离子取代了4f1晶位的三价Fe离子. 同时, Ca-Co(Zn)共掺杂使体系的总磁矩增大, 磁晶各向异性能下降, 但相比于Co和Zn单掺杂体系, 磁晶各向异性能有所改善. 这表明, Ca-Co(Zn)共掺杂能够有效地提高M型锶铁氧体的磁性能, 并具备节约成本和环保的优点.

     

    M-type strontium ferrite has attracted widespread attention in the field of permanent magnet materials due to its unique magnetic properties, dielectric performance, and thermal stability. However, compared with rare-earth permanent magnets such as Nd2Fe14B, strontium ferrite (SrFe12O19) permanent magnets possess relatively low comprehensive magnetic properties, which limits their application range. The effects of Ca-Co (Zn) doping on the electronic structure, mechanical properties, and magnetic properties of M-type strontium ferrite are systematically investigated by first-principles plane-wave pseudopotential method based on density functional theory (DFT), combined with the generalized gradient approximation (GGA + U ) in this work. The calculation results indicate that the Ca-Co (Zn) co-doped M-type strontium ferrite systems exhibit good structural stability and mechanical properties. In the Ca-Zn co-doped structures, the conductivity of the system is enhanced because of the substitution of divalent Zn ionsfortrivalent Fe ions at the 4f1 site. The Ca-Co (Zn) co-doping increases the total magnetic moment of the system, while the magnetocrystalline anisotropy energy decreases. However, compared with the single Co doped system and single Zn doped system, the Co-Zn co-doped system has the magnetocrystalline anisotropy energy improved, indicating that Ca-Co (Zn) co-doping can effectively enhance the magnetic properties of strontium ferrite. In this work, the mechanisms of the effects of Ca-Co and Ca-Zn co-doping on the magnetocrystalline anisotropy energy of strontium ferrite are also analyzed. The results indicate that the decrease of magnetocrystalline anisotropy energy in the Ca-Co co-doped system is mainly due to the effects of dxy and \mathrmd_x^2-y^2 orbital electrons of Co3+ ion and dxy and \mathrmd_x^2-y^2 orbital electrons of Fe ions at the 2b site. In the Ca-Zn co-doped system, the reduction is mainly influenced by Fe-3d orbitals at the 4f1 site, while the dxy and \mathrmd_x^2 - y^2 orbital electrons of the 2b site enhance the magnetocrystalline anisotropy energy of the system. These results provide theoretical guidance for modifying M-type strontium ferritein future.

     

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