Ghara Somnath, Barts Evgenii, Vasin Kirill, Kamenskyi Dmytro, Prodan Lilian, Tsurkan Vladimir, Kézsmárki István, Mostovoy Maxim, Deisenhofer Joachim
Experimentalphysik V, Center for Electronic Correlations and Magnetism, Institute for Physics, University of Augsburg, D-86135, Augsburg, Germany.
Zernike Institute for Advanced Materials, University of Groningen, Nijenborgh 4, 9747 AG, Groningen, The Netherlands.
Nat Commun. 2023 Aug 24;14(1):5174. doi: 10.1038/s41467-023-40722-y.
Magnetization reversal in ferro- and ferrimagnets is a well-known archetype of non-equilibrium processes, where the volume fractions of the oppositely magnetized domains vary and perfectly compensate each other at the coercive magnetic field. Here, we report on a fundamentally new pathway for magnetization reversal that is mediated by an antiferromagnetic state. Consequently, an atomic-scale compensation of the magnetization is realized at the coercive field, instead of the mesoscopic or macroscopic domain cancellation in canonical reversal processes. We demonstrate this unusual magnetization reversal on the Zn-doped polar magnet FeMoO. Hidden behind the conventional ferrimagnetic hysteresis loop, the surprising emergence of the antiferromagnetic phase at the coercive fields is disclosed by a sharp peak in the field-dependence of the electric polarization. In addition, at the magnetization reversal our THz spectroscopy studies reveal the reappearance of the magnon mode that is only present in the pristine antiferromagnetic state. According to our microscopic calculations, this unusual process is governed by the dominant intralayer coupling, strong easy-axis anisotropy and spin fluctuations, which result in a complex interplay between the ferrimagnetic and antiferromagnetic phases. Such antiferro-state-mediated reversal processes offer novel concepts for magnetization control, and may also emerge for other ferroic orders.
铁磁体和亚铁磁体中的磁化反转是一种众所周知的非平衡过程原型,在该过程中,反向磁化畴的体积分数会发生变化,并在矫顽磁场下相互完美补偿。在此,我们报告一种由反铁磁态介导的全新的磁化反转途径。因此,在矫顽场下实现了磁化的原子尺度补偿,而非传统反转过程中的介观或宏观畴抵消。我们在掺锌极性磁体FeMoO上展示了这种非同寻常的磁化反转。隐藏在传统亚铁磁滞回线背后,通过极化电场对磁场依赖性的一个尖峰,揭示了在矫顽场下反铁磁相的惊人出现。此外,在磁化反转时,我们的太赫兹光谱研究揭示了仅存在于原始反铁磁态中的磁振子模式的重新出现。根据我们的微观计算,这种异常过程受主导的层内耦合、强易轴各向异性和自旋涨落支配,这导致了亚铁磁相和反铁磁相之间复杂的相互作用。这种反铁磁态介导的反转过程为磁化控制提供了新的概念,并且也可能出现在其他铁性序中。