论文标题

磁性材料中的自旋光色散

Spin-phonon dispersion in magnetic materials

论文作者

Gu, Mingqiang, Bai, Y. H., Zhang, G. P., George, Thomas F.

论文摘要

电子自旋与晶格振动之间的显微镜耦合是从简单磁体中的形态效应到多效性尖晶石和血液中的磁性耦合的一系列外来特性。传统上,单个自旋耦合常数用于表征晶格能够有效地影响旋转的方式,但是它几乎不足以完全捕获新型的电磁行为。在这里,我们介绍了一个自旋形成分散的概念,以沿着声子晶体动量方向进行旋转矩的变化,因此可以将整个自旋变化映射到。与声子分散剂不同,旋转子分散剂具有正频率和负频率分支(即使在平衡基态下},分别对应于自旋增强和旋转还原。我们对BCC FE和HCP CO的研究表明,自旋力矩阵,即自旋力矩的二阶空间衍生物,类似于振动力矩阵,但其对角线元素小于非对抗的元素。这导致了独特的自旋分散体。自旋光色散的概念将非磁性材料中传统的Elliott-Yafthe理论扩展到了磁性材料的整个布里鲁因区域,因此在诸如COF $ _2 $和NIO之类的系统中为激发态打开了大门,在THZ制度中检测到了强大的自旋晶体耦合。

Microscopic coupling between the electron spin and the lattice vibration is responsible for an array of exotic properties from morphic effects in simple magnets to magnetodielectric coupling in multiferroic spinels and hematites. Traditionally, a single spin-phonon coupling constant is used to characterize how effectively the lattice can affect the spin, but it is hardly enough to capture novel electromagnetic behaviors to the full extent. Here, we introduce a concept of spin-phonon dispersion to project the spin moment change along the phonon crystal momentum direction, so the entire spin change can be mapped out. Different from the phonon dispersion, the spin-phonon dispersion has both positive and negative frequency branches {even in the equilibrium ground state}, which correspond to the spin enhancement and spin reduction, respectively. Our study of bcc Fe and hcp Co reveals that the spin force matrix, that is, the second-order spatial derivative of spin moment, is similar to the vibrational force matrix, but its diagonal elements are smaller than the off-diagonal ones. This leads to the distinctive spin-phonon dispersion. The concept of spin-phonon dispersion expands the traditional Elliott-Yafet theory in nonmagnetic materials to the entire Brillouin zone in magnetic materials, thus opening the door to excited states in systems such as CoF$_2$ and NiO, where a strong spin-lattice coupling is detected in the THz regime.

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