论文标题

在原子薄的Chern绝缘子MNBI2TE4中交织在一起的拓扑和磁性

Intertwined Topological and Magnetic Orders in Atomically Thin Chern Insulator MnBi2Te4

论文作者

Ovchinnikov, Dmitry, Huang, Xiong, Lin, Zhong, Fei, Zaiyao, Cai, Jiaqi, Song, Tiancheng, He, Minhao, Jiang, Qianni, Wang, Chong, Li, Hao, Wang, Yayu, Wu, Yang, Xiao, Di, Chu, Jiun-Haw, Yan, Jiaqiang, Chang, Cui-Zu, Cui, Yong-Tao, Xu, Xiaodong

论文摘要

带拓扑与磁性之间的相互作用在物质量子状态中起关键作用。 MNBI2TE4是Van der Waals磁铁,最近成为探索Chern绝缘体物理学的令人兴奋的平台。预计其分层的抗铁磁阶将实现均匀的依赖性拓扑状态,并受到有希望的边缘传输测量的支持。此外,当所有旋转都被施加的磁场对齐时,它变成了Chern绝缘子。然而,随着磁态的连续调节,散装电子结构的演变仍未得到探索。在这里,采用多模式探针,我们在原子上薄的MNBI2TE4设备中建立了散装电子结构,磁性状态,拓扑顺序和层厚度之间的一对一对应关系。当磁态通过倾斜的磁相调谐时,我们观察到一个带交叉,即,散装带隙的闭合和重新打开,对应于并发的拓扑相变。令人惊讶的是,我们发现均匀和奇数的数字设备表现出与磁性状态相似的拓扑相过渡,这与最近的理论和实验报告不同。我们的发现在这款新发现的拓扑磁铁中为带拓扑与磁性之间的相互作用提供了新的灯光,并在连续调谐的拓扑相变中对拓扑不变的同时测量进行了验证。

The interplay between band topology and magnetic order plays a key role in quantum states of matter. MnBi2Te4, a van der Waals magnet, has recently emerged as an exciting platform for exploring Chern insulator physics. Its layered antiferromagnetic order was predicted to enable even-odd layer-number dependent topological states, supported by promising edge transport measurements. Furthermore, it becomes a Chern insulator when all spins are aligned by an applied magnetic field. However, the evolution of the bulk electronic structure as the magnetic state is continuously tuned and its dependence on layer number remains unexplored. Here, employing multimodal probes, we establish one-to-one correspondence between bulk electronic structure, magnetic state, topological order, and layer thickness in atomically thin MnBi2Te4 devices. As the magnetic state is tuned through the canted magnetic phase, we observe a band crossing, i.e., the closing and reopening of the bulk bandgap, corresponding to the concurrent topological phase transition. Surprisingly, we find that the even- and odd-layer number devices exhibit a similar topological phase transition coupled to magnetic states, distinct from recent theoretical and experimental reports. Our findings shed new light on the interplay between band topology and magnetic order in this newly discovered topological magnet and validate the band crossing with concurrent measurements of topological invariant in a continuously tuned topological phase transition.

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