论文标题
区块轨道选择性莫特绝缘子:自旋激发分析
Block orbital-selective Mott insulators: a spin excitation analysis
论文作者
论文摘要
我们介绍了一项对旋转激发的全面研究 - 通过低维轨道选择性莫特绝缘子的所谓块磁性状态的动态自旋结构因子$ s(q,ω)$衡量。我们通过多轨哈伯德模型和广义的Kondo-Heisenberg Hamiltonian实现了这一状态。由于模型中存在各种竞争能量量表,该系统会开发出各种形状和大小的周期性铁磁岛,它们是抗磁性耦合的。 2 $ \ times $ 2的特殊情况已经在梯子材料bafe $ _2 $ se $ _3 $的实验中发现,在压力下变成超导。在这里,我们使用密度矩阵重新归一化组方法讨论了$ s(q,ω)$的电子密度以及哈伯德和Hund耦合依赖性。确定了几个有趣的特征:(1)形成了声学(分散自旋波)模式。 (2)自旋波带宽建立了一个新的能量尺度,该能量尺度在很大程度上取决于磁岛的大小,并且对于大簇而言变得异常小。 (3)在此处研究的所有块状态都存在光学(无分散自旋激发)模式。此外,已经研究了各种现象学旋转的汉密尔顿人,但没有一个完全匹配我们的结果,这些结果主要是在中级哈伯德$ u $优势下获得的。我们的综合分析为晶体种植者提供了理论指导和动机,以寻找适当的候选材料来实现块状态,并向中子散射实验者介绍,以确认此处揭示的异国情调动力学磁性,并具有丰富的声学和光学特征。
We present a comprehensive study of the spin excitations - as measured by the dynamical spin structure factor $S(q,ω)$ - of the so-called block-magnetic state of low-dimensional orbital-selective Mott insulators. We realize this state via both a multi-orbital Hubbard model and a generalized Kondo-Heisenberg Hamiltonian. Due to various competing energy scales present in the models, the system develops periodic ferromagnetic islands of various shapes and sizes, which are antiferromagnetically coupled. The 2$\times$2 particular case was already found experimentally in the ladder material BaFe$_2$Se$_3$ that becomes superconducting under pressure. Here we discuss the electronic density as well as Hubbard and Hund coupling dependence of $S(q,ω)$ using density matrix renormalization group method. Several interesting features were identified: (1) An acoustic (dispersive spin-wave) mode develops. (2) The spin-wave bandwidth establishes a new energy scale that is strongly dependent on the size of the magnetic island and becomes abnormally small for large clusters. (3) Optical (dispersionless spin excitation) modes are present for all block states studied here. In addition, a variety of phenomenological spin Hamiltonians have been investigated but none matches entirely our results that were obtained primarily at intermediate Hubbard $U$ strengths. Our comprehensive analysis provides theoretical guidance and motivation to crystal growers to search for appropriate candidate materials to realize the block states, and to neutron scattering experimentalists to confirm the exotic dynamical magnetic properties unveiled here, with a rich mixture of acoustic and optical features.