Department of Materials Science and Engineering, The Pennsylvania State University, University Park, PA, 16802, USA.
Department of Physics, University of California San Diego, La Jolla, CA, 92093, USA.
Adv Mater. 2022 Dec;34(49):e2202841. doi: 10.1002/adma.202202841. Epub 2022 Nov 2.
Magnetism in topological materials creates phases exhibiting quantized transport phenomena with potential technological applications. The emergence of such phases relies on strong interaction between localized spins and the topological bands, and the consequent formation of an exchange gap. However, this remains experimentally unquantified in intrinsic magnetic topological materials. Here, this interaction is quantified in MnBi Te , a topological insulator with intrinsic antiferromagnetism. This is achieved by optically exciting Bi-Te p states comprising the bulk topological bands and interrogating the consequent Mn 3d spin dynamics, using a multimodal ultrafast approach. Ultrafast electron scattering and magneto-optic measurements show that the p states demagnetize via electron-phonon scattering at picosecond timescales. Despite being energetically decoupled from the optical excitation, the Mn 3d spins, probed by resonant X-ray scattering, are observed to disorder concurrently with the p spins. Together with atomistic simulations, this reveals that the exchange coupling between localized spins and the topological bands is at least 100 times larger than the superexchange interaction, implying an optimal exchange gap of at least 25 meV in the surface states. By quantifying this exchange coupling, this study validates the materials-by-design strategy of utilizing localized magnetic order to manipulate topological phases, spanning static to ultrafast timescales.
磁性拓扑材料中存在的磁有序可以产生具有量子输运现象的相,这些现象在技术上具有潜在的应用价值。这些相的出现依赖于局域自旋与拓扑能带之间的强相互作用,以及由此产生的交换能隙。然而,这种相互作用在本征磁性拓扑材料中尚未得到实验定量。在本征反铁磁拓扑绝缘体 MnBiTe 中,这种相互作用得到了定量。通过使用多模态超快方法光学激发包含体拓扑带的 Bi-Te p 态,并探测随之产生的 Mn 3d 自旋动力学,实现了这一点。超快电子散射和磁光测量表明,p 态通过电子-声子散射在皮秒时间尺度上退磁化。尽管 Mn 3d 自旋与光激发在能量上是解耦的,但通过共振 X 射线散射探测到的自旋与 p 自旋同时发生无序。与原子模拟一起,这表明局域自旋与拓扑能带之间的交换耦合至少比超交换相互作用大 100 倍,这意味着表面态中的交换能隙至少为 25meV。通过对这种交换耦合的定量,这项研究验证了利用局域磁有序来操控拓扑相的材料设计策略,该策略涵盖了静态到超快时间尺度。