论文标题
扭曲过渡金属二甲藻元化双层中的拓扑多效率
Topological multiferroic order in twisted transition metal dichalcogenide bilayers
论文作者
论文摘要
分层的范德华(Van der Waals)的材料已成为人工工程相关状态的强大平台。在这里,我们在四分之一填充时表明了在扭曲的二甲基化元素双层超晶格中的多效率的出现。我们表明,库仑相互作用之间的竞争导致了铁磁和铁电序的同时出现。我们得出了该系统的磁电耦合,从而导致电荷和自旋顺序之间的直接强耦合。我们表明,由于固有的自旋轨道耦合效应,电子结构显示了非零的Chern数,因此显示了拓扑多效率。我们表明,这种拓扑状态在多效率的不同磁和铁电域中产生界面模式。我们证明,这些拓扑模式可以用外部电场来调节,并由底物产生的超大效应触发。我们的结果提出了扭曲的范德华材料,作为探索多性对称性破坏订单的潜在平台,并最终在磁电域中,可控制的拓扑激发。
Layered van der Waals materials have risen as powerful platforms to artificially engineer correlated states of matter. Here we show the emergence of a multiferroic order in a twisted dichalcogenide bilayer superlattice at quarter-filling. We show that the competition between Coulomb interactions leads to the simultaneous emergence of ferrimagnetic and ferroelectric orders. We derive the magnetoelectric coupling for this system, which leads to a direct strong coupling between the charge and spin orders. We show that, due to intrinsic spin-orbit coupling effects, the electronic structure shows a non-zero Chern number, thus displaying a topological multiferroic order. We show that this topological state gives rise to interface modes at the different magnetic and ferroelectric domains of the multiferroic. We demonstrate that these topological modes can be tuned with external electric fields as well as triggered by supermoire effects generated by a substrate. Our results put forward twisted van der Waals materials as a potential platform to explore multiferroic symmetry breaking orders and, ultimately, controllable topological excitations in magnetoelectric domains.