Single-Atomic-Layer Stanene on Ferromagnetic Co Nanoislands with Topological Band Structures.
Chia-Ju ChenYung-Chun ChaoYen-Hui LinYi-Hao ZhuangYen-Ming LaiShih-Tang HuangAllan H MacDonaldChih-Kang ShihBo-Yao WangJung-Jung SuPin-Jui HsuPublished in: ACS nano (2023)
Introducing magnetism to two-dimensional topological insulators is a central issue in the pursuit of magnetic topological materials in low dimensionality. By means of low-temperature growth at 80 K, we succeeded in fabricating a monolayer stanene on Co/Cu(111) and resolving ferromagnetic spin contrast by field-dependent spin-polarized scanning tunneling microscopy (SP-STM). Increases of both remanence to saturation magnetization ratio ( M r / M s ) and coercive field ( H c ) due to an enhanced perpendicular magnetic anisotropy (PMA) are further identified by out-of-plane magneto-optical Kerr effect (MOKE). In addition to ultraflat stanene fully relaxed on bilayer Co/Cu(111) from density functional theory (DFT), characteristic topological properties including an in-plane s-p band inversion and a spin-orbit coupling (SOC) induced gap about 0.25 eV at the Γ̅ point have also been verified in the Sn-projected band structure. Interfacial coupling of single-atomic-layer stanene with ferromagnetic Co biatomic layers allows topological band features to coexist with ferromagnetism, facilitating a conceptual design of atomically thin magnetic topological heterostructures.