论文标题

相邻蜂窝层中抗铁磁性和铁磁性的共存

Coexistence of antiferromagnetism and ferrimagnetism in adjacent honeycomb layers

论文作者

Szaller, D., Prodan, L., Geirhos, K., Felea, V., Skourski, Y., Gorbunov, D., Förster, T., Helm, T., Nomura, T., Miyata, A., Zherlitsyn, S., Wosnitza, J., Tsirlin, A. A., Tsurkan, V., Kézsmárki, I.

论文摘要

抗铁磁和铁/铁磁性阶通常在本质上是独家的,因此,它们在原子级接近的共存仅预计仅在异质结构中。打破这种范式并扩大了非常规磁状态的范围,我们在这里报告了原子尺度的杂化旋转状态,该状态在极地防铁磁铁公司的三维晶体中稳定下来铁磁瞬间。我们的微观自旋模型捕获了观察到的纵向和横向磁化的场依赖性以及磁电/弹性特性,揭示了这种新型的自旋态由抗铁磁和铁磁蜂蜜层的交替堆叠组成。强大的层内和弱的层间交换耦合以及八面体和四面体\ emph {CO}位点的各向异性均可识别为稳定抗铁磁和铁磁性层的关键成分。我们表明,磁相互作用的适当平衡可以将该混合相的稳定性范围扩展到零磁场。通过适当的微观相互作用组合,实现这种不同的自旋顺序的逐层堆叠的可能性为磁状态的纳米级工程打开了新的维度。

Antiferromagnetic and ferro/ferrimagnetic orders are typically exclusive in nature, thus, their co-existence in atomic-scale proximity is expected only in heterostructures. Breaking this paradigm and broadening the range of unconventional magnetic states, we report here on an atomic-scale hybrid spin state, which is stabilized in three-dimensional crystals of the polar antiferromagnet Co$_2$Mo$_3$O$_8$ by magnetic fields applied perpendicular to the \emph{Co} honeycomb layers and possesses a spontaneous in-plane ferromagnetic moment. Our microscopic spin model, capturing the observed field dependence of the longitudinal and transverse magnetization as well as the magnetoelectric/elastic properties, reveals that this novel spin state is composed of an alternating stacking of antiferromagnetic and ferrimagnetic honeycomb layers. The strong intra-layer and the weak inter-layer exchange couplings together with competing anisotropies at octahedral and tetrahedral \emph{Co} sites are identified as the key ingredients to stabilize antiferromagnetic and ferrimagnetic layers in such a close proximity. We show that the proper balance of magnetic interactions can extend the stability range of this hybrid phase down to zero magnetic field. The possibility to realize a layer-by-layer stacking of such distinct spin orders via suitable combinations of microscopic interactions opens a new dimension towards the nanoscale engineering of magnetic states.

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