Dirac semimetallic Janus Ni-trihalide monolayer with strain-tunable magnetic anisotropy and electronic properties.
Bo ChenXiaocha WangWenbo MiPublished in: Physical chemistry chemical physics : PCCP (2023)
Two-dimensional (2D) ferromagnetic (FM) semiconductors have been paid much attention due to the potential applications in spintronics. Here, the electronic and magnetic properties of 2D Janus Ni-trihalide monolayer Ni 2 X 3 Y 3 (X, Y = I, Br, Cl; X ≠ Y) are investigated by first-principle calculations. The properties of Ni 2 X 3 Y 3 (X, Y = I, Br, Cl; X ≠ Y) monolayers are compared by selecting the NiCl 3 monolayer as the reference material. Ni 2 X 3 Y 3 monolayers have two distinct magnetic ground states of ferromagnetic (FM) and antiferromagnetic (AFM). In the Ni 2 X 3 Y 3 monolayer, two different orbital splits were observed, one semiconductor state and the other semimetal state. The semimetal state of Ni 2 X 3 Y 3 can be tuned to semiconductor or metallic state when biaxial strain is applied. The magnetic anisotropy energy (MAE) of the Ni 2 X 3 Y 3 monolayer can display variations compared to that of the NiCl 3 monolayer, with the direction of easy magnetization being influenced by the specific halogen elements present. The easy magnetization direction of Ni 2 X 3 Y 3 can also be changed by applying biaxial strain. The T c of Ni 2 X 3 Y 3 is predicted to be about 100 K according to the calculation of the E AFM - E FM model. The design of the Janus Ni 2 X 3 Y 3 structure has expanded the range of 2D magnetic materials, a significant contribution has been made to the advancement of spintronics and its applications.