论文标题
三角形晶格抗fiferromagnet中的孔和磁极
Holes and magnetic polarons in a triangular lattice antiferromagnet
论文作者
论文摘要
在几何沮丧的晶格中,电荷运动与磁性之间的复杂相互作用对于许多二维量子材料的性质至关重要。三角形晶格抗铁磁铁是沮丧系统的规范示例,在这里我们分析了这种晶格中的一个孔的动力学,重点是可观察到的,这些晶格在新一代实验中已可以访问。使用$ t $ - $ j $模型,我们以强磁相互作用的极限在线性自旋波理论中精确地解决了该问题,这表明基态由旋转波的连贯状态描述。该派生强调了静态孔和相邻旋转之间的相互作用所起的至关重要的作用,该旋转起源于几何挫败感,并且在早期的作品中经常被省略。此外,我们表明,在晶格位点突然插入一个孔后的非平衡动力学是由具有时间依赖性振荡系数的连贯状态给出的。从物理上讲,这描述了仅通过三分之二的晶格位点传播的磁挫败感,因为自旋波的破坏性干扰叶片平行于被不受干扰的孔除去的旋转。波通过晶格传播后,磁化强度放松到基态的磁力。然后,我们使用分析解决方案来基准广泛使用的自搭配诞生近似(SCBA),这表明它对于三角形晶格也非常准确。使用SCBA分析了磁极光谱的一般磁相互作用,我们将结果与平方晶格的结果进行比较。
The intricate interplay between charge motion and magnetic order in geometrically frustrated lattices is central for the properties of many two-dimensional quantum materials. The triangular lattice antiferromagnet is a canonical example of a frustrated system, and here we analyse the dynamics of a hole in such a lattice focusing on observables that have become accessible in a new generation of experiments. Using the $t$-$J$ model, we solve the problem exactly within linear spin wave theory in the limit of strong magnetic interactions, showing that the ground state is described by a coherent state of spin waves. The derivation highlights the crucial role played by the interaction between a static hole and the neighboring spins, which originates in the geometric frustration and has often been omitted in earlier works. Furthermore, we show that the non-equilibrium dynamics after a hole has abruptly been inserted at a lattice site is given exactly by a coherent state with time-dependent oscillatory coefficients. Physically, this describes a burst of magnetic frustration propagating through only two-thirds of the lattice sites, since a destructive interference of spin waves leaves spins parallel to that removed by the hole unperturbed. After the wave has propagated through the lattice, the magnetization relaxes to that of the ground state. We then use our analytical solution to benchmark the widely used self-consistent Born approximation (SCBA), showing that it is very accurate also for a triangular lattice. The magnetic polaron spectrum is analysed for general magnetic interactions using the SCBA, and we compare our results with those for a square lattice.