论文标题
Helimagnet FEP中的挫败模型和旋转激发
Frustration model and spin excitations in the helimagnet FeP
论文作者
论文摘要
金属化合物FEP属于材料类别,其具有复杂的非共线自旋顺序,这是由磁性挫败感驱动的。虽然其带有$λ_{\ text {s}} \大约5c $的双螺旋磁性结构,其中$ c $是晶格常数,以前已经确定,但导致该基态的相关自旋旋转相互作用仍然未知。通过进行广泛的非弹性中子散射测量,我们在动量能量的大部分空间中获得了自旋兴奋光谱。光谱表明,镁质的间隙能量为$ \ sim $ 5 mev。尽管具有3D晶体结构,但磁通模式显示出强烈的各向异性分散体,揭示了FEP中磁相互作用的准二维特征。然而,材料的物理学并不是由铁磁的主导交换决定。取而代之的是,刚性铁磁旋转链之间的二维抗铁磁相互作用驱动了磁性挫败感。使用线性自旋波理论,我们能够用能够再现观察到的光谱的各向异性术语构建有效的海森堡哈密顿量。这使我们能够量化FEP中的交换相互作用,并确定其磁性挫败感的机制。
The metallic compound FeP belongs to the class of materials that feature a complex noncollinear spin order driven by magnetic frustration. While its double-helix magnetic structure with a period $λ_{\text{s}} \approx 5c$, where $c$ is the lattice constant, was previously well determined, the relevant spin-spin interactions that lead to that ground state remain unknown. By performing extensive inelastic neutron scattering measurements, we obtained the spin-excitation spectra in a large part of the momentum-energy space. The spectra show that the magnons are gapped with a gap energy of $\sim$5 meV. Despite the 3D crystal structure, the magnon modes display strongly anisotropic dispersions, revealing a quasi-one-dimensional character of the magnetic interactions in FeP. The physics of the material, however, is not determined by the dominating exchange, which is ferromagnetic. Instead, the weaker two-dimensional antiferromagnetic interactions between the rigid ferromagnetic spin chains drive the magnetic frustration. Using linear spin-wave theory, we were able to construct an effective Heisenberg Hamiltonian with an anisotropy term capable of reproducing the observed spectra. This enabled us to quantify the exchange interactions in FeP and determine the mechanism of its magnetic frustration.