论文标题
层次的fe5gete2中的Skyrmionic自旋结构至室温
Skyrmionic Spin Structures in Layered Fe5GeTe2 Up To Room Temperature
论文作者
论文摘要
2D van der waals磁铁Fe5gete2中晶格,温度和磁场的作用是一个关键的开放问题。使用Lorentz透射电子显微镜,我们通过实验观察到Fe5gete2的亚稳态前冷却后冷却后阶段的拓扑自旋结构至室温。在宽的温度和场范围内,没有首选手性的空中磁性气泡形成,这表明了中心对称晶体结构。在冷却阶段中,即使没有外部场的应用,这些气泡也是可以观察到的,而在冷却后阶段,可以看到从气泡域到条纹域的转换。为了了解Fe5Gete2中的磁顺序,我们将宏观磁力测定表征与微观密度函数理论计算进行比较。我们的结果表明,即使到室温,拓扑自旋结构也可以在中心对称的范德华磁体中稳定。
The role of the crystal lattice, temperature and magnetic field for the spin structure formation in the 2D van der Waals magnet Fe5GeTe2 is a key open question. Using Lorentz transmission electron microscopy, we experimentally observe topological spin structures up to room temperature in the metastable pre-cooling and stable post-cooling phase of Fe5GeTe2. Over wide temperature and field ranges, skyrmionic magnetic bubbles form without preferred chirality, which is indicative of a centrosymmetric crystal structure. In the pre-cooling phase, these bubbles are observable even without the application of an external field, while in the post-cooling phase, a transformation from bubble domains to stripe domains is seen. To understand the magnetic order in Fe5GeTe2 we compare macroscopic magnetometry characterization results with microscopic density functional theory calculation. Our results show that even up to room temperature, topological spin structures can be stabilized in centrosymmetric van der Waals magnets.