论文标题
反铁磁$α$ -FE $ _2 $ o $ $ _3 $薄膜
Single- and Multimagnon Dynamics in Antiferromagnetic $α$-Fe$_2$O$_3$ Thin Films
论文作者
论文摘要
了解抗铁磁(AFM)薄膜中的自旋动力学对于设计基于AFM木镁运输的新型设备至关重要。在这里,我们研究了AFM $ S = 5/2 $α$ -FE $ _2 $ _2 $ o $ _3 $的薄膜中的镁动力学,通过结合谐振X射线散射,Anderson Indrurity模型以及动态均值场理论和Heisenberg Spin模型。在100 MEV以下,我们观察到与厚度无关的(降至15 nm)的声学单磁通模式。在较高的能量(100-500 MEV)下,一个同样间隔的意外序列,光学模式可以解析并归因于$ΔS_Z= 1 $,2、2、3、4和5磁激发,对应于多个非互动木nons。我们的研究揭示了单个和多磁铁在$α$ -fe $ _2 $ o $ $ _3 $薄膜中的能量,性格和动量依赖性,对AFM镁运输及其相关现象产生了影响。从更广泛的角度来看,我们将L边缘共振的弹性X射线散射作为多刺激探针的使用最高$ΔS_Z= 2S $。我们的分析将价外壳中的自旋轨道混合确定为访问$ΔS_Z= 1 $的激发的关键要素,例如$ΔS_z= 5 $。同时,我们阐明了自旋激励的新颖起源,而不是$ΔS_z= 2 $,强调了晶格晶格作为角动量的储层的关键作用,该储层补充了吸收的量子和发射的光子所携带的量子。
Understanding the spin dynamics in antiferromagnetic (AFM) thin films is fundamental for designing novel devices based on AFM magnon transport. Here, we study the magnon dynamics in thin films of AFM $S=5/2$ $α$-Fe$_2$O$_3$ by combining resonant inelastic x-ray scattering, Anderson impurity model plus dynamical mean-field theory, and Heisenberg spin model. Below 100 meV, we observe the thickness-independent (down to 15 nm) acoustic single-magnon mode. At higher energies (100-500 meV), an unexpected sequence of equally spaced, optical modes is resolved and ascribed to $ΔS_z = 1$, 2, 3, 4, and 5 magnetic excitations corresponding to multiple, noninteracting magnons. Our study unveils the energy, character, and momentum-dependence of single and multimagnons in $α$-Fe$_2$O$_3$ thin films, with impact on AFM magnon transport and its related phenomena. From a broader perspective, we generalize the use of L-edge resonant inelastic x-ray scattering as a multispin-excitation probe up to $ΔS_z = 2S$. Our analysis identifies the spin-orbital mixing in the valence shell as the key element for accessing excitations beyond $ΔS_z = 1$, and up to, e.g., $ΔS_z = 5$. At the same time, we elucidate the novel origin of the spin excitations beyond the $ΔS_z = 2$, emphasizing the key role played by the crystal lattice as a reservoir of angular momentum that complements the quanta carried by the absorbed and emitted photons.