论文标题

混合多效率(ND4)2FECL5D2O的磁激发

Magnetic Excitations of the Hybrid Multiferroic (ND4)2FeCl5D2O

论文作者

Bai, Xiaojian, Fishman, Randy S., Sala, Gabriele, Pajerowski, Daniel M., Garlea, V. Ovidiu, Hong, Tao, Lee, Minseong, Fernandez-Baca, Jaime A., Cao, Huibo, Tian, Wei

论文摘要

我们报告了基于杂化分子的多丝质化合物(ND4)2FECL5D2O的全面非弹性中子散射研究,在零场不稳定的循环相和高场准胶线相。自发的电化极化将与场诱导的磁过渡同时改变其方向,从与晶体学A轴的主要对齐为C轴。为了考虑到极化方向的这种变化,提出了基础多性机制,以从通过反向dzyalloshinskii-moriya相互作用转变为p-d杂交模型的自旋流动模型。我们使用线性自旋理论对(ND4)2FECL5D2O的非弹性中子数据进行了详细分析,以量化磁相互作用强度并研究不同多性机制对磁耦合的可能影响。我们的结果表明,两个多效相的自旋动力学可以用易于平面各向异性的海森伯格汉密尔顿人很好地描述。我们没有发现两个阶段的最佳模型参数之间的显着差异。在两个阶段之间,交换耦合的层次结构和沮丧的相互作用之间的平衡保持不变,这表明(ND4)2FECL5D2O中的磁相互作用比电力极化对响应于施加磁场的电子自由度的精致重组的响应要强大得多。

We report a comprehensive inelastic neutron scattering study of the hybrid molecule-based multiferroic compound (ND4)2FeCl5D2O in the zero-field incommensurate cycloidal phase and the high-field quasi-collinear phase. The spontaneous electric polarization changes its direction concurrently with the field-induced magnetic transition, from mostly aligned with the crystallographic a-axis to the c-axis. To account for such change of polarization direction, the underlying multiferroic mechanism was proposed to switch from the spin-current model induced via the inverse Dzyalloshinskii-Moriya interaction to the p-d hybridization model. We perform a detailed analysis of the inelastic neutron data of (ND4)2FeCl5D2O using linear spin-wave theory to quantify magnetic interaction strengths and investigate possible impact of different multiferroic mechanisms on the magnetic couplings. Our result reveals that the spin dynamics of both multiferroic phases can be well-described by a Heisenberg Hamiltonian with an easy-plane anisotropy. We do not find notable differences between the optimal model parameters of the two phases. The hierarchy of exchange couplings and the balance among frustrated interactions remain the same between two phases, suggesting that magnetic interactions in (ND4)2FeCl5D2O are much more robust than the electric polarization in response to delicate reorganizations of the electronic degrees of freedom in an applied magnetic field.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源