论文标题
多重$ Q $磁性订购的磁场 - 温度相图:远程相互作用的旋转系统的精确下降方法
Magnetic field-temperature phase diagrams for multiple-$Q$ magnetic orderings: Exact steepest descent approach to long-range interacting spin systems
论文作者
论文摘要
多重Q $磁性订购代表由Skyrmion Crystals和Hedgehog Lattices表示的由多个自旋密度波或旋转螺旋的叠加组成的磁纹理。近年来,已经在各种磁性材料中观察到了这种磁有序,并引起了极大的关注,尤其是从拓扑结构和源自非稳态磁性结构的新兴电磁场的角度来看。尽管它们经常在改变温度和外部磁场的同时在不同的多重$ Q $状态之间表现出连续的相变,但阐明相图并不直接,这主要是由于缺乏简洁的理论工具以及适当的微观模型。在这里,我们为一类有效的自旋模型提供了一个理论框架,该模型具有由磁力中的传导电子介导的远程磁相互作用。我们的框架基于最陡峭的下降方法,具有一组自洽的方程式,该方程在热力学极限内提供了精确的解决方案,并且比现有方法具有许多优势,例如有偏变量计算和数值蒙特卡洛模拟。将框架应用于具有三重和hextuple- $ q $磁性订购的模型,我们发现有趣的返回相变的框架是多$ q $阶段仅在有限温度和/或非零磁场上出现的。此外,我们表明,多重$ Q $状态可以是拓扑堆叠的Skyrmion晶体或刺猬晶格,它们表现出与非零天空数量相关的大型净旋转标量性手性。结果表明,我们的框架可能是研究磁性和拓扑相变和相关量子现象的多功能工具,该工具在托有多重$ q $磁性订购的实际磁性金属中。
Multiple-$Q$ magnetic orderings represent magnetic textures composed of superpositions of multiple spin density waves or spin spirals, as represented by skyrmion crystals and hedgehog lattices. Such magnetic orderings have been observed in various magnetic materials in recent years, and attracted enormous attention, especially from the viewpoint of topology and emergent electromagnetic fields originating from noncoplanar magnetic structures. Although they often exhibit successive phase transitions among different multiple-$Q$ states while changing temperature and an external magnetic field, it is not straightforward to elucidate the phase diagrams, mainly due to the lack of concise theoretical tools as well as appropriate microscopic models. Here, we provide a theoretical framework for a class of effective spin models with long-range magnetic interactions mediated by conduction electrons in magnetic metals. Our framework is based on the steepest descent method with a set of self-consistent equations that leads to exact solutions in the thermodynamic limit, and has many advantages over existing methods such as biased variational calculations and numerical Monte Carlo simulations. Applying the framework to the models with instabilities toward triple- and hextuple-$Q$ magnetic orderings, we find that interesting reentrant phase transitions where the multiple-$Q$ phases appear only at finite temperature and/or nonzero magnetic field. Furthermore, we show that the multiple-$Q$ states can be topologically-nontrivial stacked skyrmion crystals or hedgehog lattices, which exhibit large net spin scalar chirality associated with nonzero skyrmion number. The results demonstrate that our framework could be a versatile tool for studying magnetic and topological phase transitions and related quantum phenomena in actual magnetic metals hosting multiple-$Q$ magnetic orderings.