磁致伸缩
材料科学
磁晶各向异性
凝聚态物理
四方晶系
费米能级
兴奋剂
合金
过渡金属
各向异性
密度泛函理论
电子结构
电子能带结构
态密度
冶金
磁各向异性
化学
结晶学
计算化学
晶体结构
磁化
物理
光电子学
磁场
生物化学
催化作用
电子
量子力学
作者
Zhencheng Yang,Mengli Yao,Jing Pan,Longkun Huang,Min Li,Hui Wang
摘要
Using density functional theory calculation and rigid band model, we investigate the electronic structure and magnetostrictive properties of transition heavy-metal doped Fe-based (Fe–Al, Fe–Si, Fe–B, and Fe–Be) alloys. It is found that a small amount of addition of 4d/5d heavy-metal atoms greatly enhances the coefficient of tetragonal magnetostriction of Fe-based alloys, reaching up to about 1000 ppm in Fe87.5Al6.25Pt6.25 and Fe75Al18.75Rh6.25 alloys. The underlying mechanism is mainly ascribed to combined factors of band narrowing induced by non-bonded states in pure Fe layer, strong spin–orbit coupling effect by heavy metals, and improved mechanical properties, through analysis of the electronic density of states near Fermi level and k-mesh resolved magnetocrystalline anisotropy energy in momentum space. These results provide useful guidance for optimizing the magnetostrictive performance of Fe-based alloys for practical application.
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