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Ab initio study of spin-spiral noncollinear magnetism in a free-standing Fe(110) monolayer under in-plane strain

机译:平面应变下独立式Fe(110)单层中自旋螺旋非共线磁性的从头算研究

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摘要

We investigate the magnetic phase transition from collinear ferromagnetic (FM) ordering to noncollinear spin-spiral (SS) ordering in an Fe(110) monolayer under in-plane strain by performing fully unconstrained first-principles spin-density-functional calculations. The FM Fe(110) monolayer undergoes a FM-SS phase transition on the application of in-plane compression, whereas the application of tension keeps the system FM. The stability and wavelength of the excited SS state are further increased by compressive strains, especially along [110]. The FM-SS transition in the isotropically strained monolayer is dominated by competing exchange interactions between the ferromagnetically coupled first neighbor and the antiferromagnetically coupled second neighbor; the third neighbor also contributes to the transition under anisotropic strain. In addition, we demonstrate the stabilization mechanism of SS noncollinear magnetism from the electronic band structures: The noncollinear SS state is stabilized by a remarkable interband repulsion between the majority and minority spins, which occurs under in-plane compression.
机译:我们通过执行完全不受约束的第一性原理自旋密度函数计算,研究了平面内应变下Fe(110)单层中从共线铁磁(FM)有序到非共线自旋螺旋(SS)有序的磁相变。 FM Fe(110)单层在施加面内压缩时经历FM-SS相变,而张力的施加使系统保持FM。受激SS状态的稳定性和波长通过压缩应变进一步增加,特别是沿着[110]。各向同性应变单分子层中的FM-SS跃迁主要由铁磁耦合的第一邻居和反铁磁耦合的第二邻居之间的竞争性交换相互作用决定。第三邻域也有助于各向异性应变下的转变。此外,我们从电子能带结构中证明了SS非共线磁性的稳定机制:非共线SS状态通过在主旋和少数自旋之间的显着带间斥力而稳定,这种排斥在平面内压缩下发生。

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