Siha Lee, Eunji Im, Sungbin Im, Changgu Lee, Haruka Komiyama, Yoichi Shiota, Teruo Ono, Kyongmo An, Kyoung‐Whan Kim, Thanh-Huong Thi Nguyen, Sanghoon Kim
Current-induced switching of magnetic octupoles in noncollinear antiferromagnetic (AFM) Mn 3 Sn has gained much interest in the development of fast and energy-efficient magnetic memory devices. Though full switching of Mn 3 Sn AFM order has been achieved in the epitaxial film prepared by molecular beam epitaxy, the switching rate (ξ) of sputtered Mn 3 Sn films has been mostly limited to 40% due to crystalline imperfections. Herein, our study reports how the Mn-deficiency affects SOT switching behavior. We find that controlling Mn composition through the co-sputtering method not only eliminates secondary phases and stabilizes the Mn 3 Sn phase but also naturally controls the interfacial conditions in the sputtered W/Mn 3 Sn bilayers. These improvements lead to coherent crystallinity with an atomically sharper interface, resulting in 100% switching of the magnetic cluster octupole of Mn 3 Sn. Our findings provide ways for optimizing the spin–orbit torque switching efficiency of Mn 3 Sn-based devices.