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Magnetism in 2D BN1x_{1-x}Ox_x and B1x_{1-x}Six_xN: polarized itinerant and local electrons

Abstract

We use density functional theory based first-principles methods to study the magnetism in a 2D hexagonal BN sheet induced by the different concentrations of oxygen and silicon atoms substituting for nitrogen (ON_\mathrm{N}) and boron (SiB_\mathrm{B}) respectively. We demonstrate the possible formation of three distinct phases based on the magnetization energy calculated self-consistently for the ferromagnetic (MEFM_{\mathrm{FM}}) and antiferromagnetic (MEAFM_{\mathrm{AFM}}) states, i.e. the paramagnetic phase with MEFM_{\mathrm{FM}}=MEAFM_{\mathrm{AFM}}, the ferromagnetic phase with MEFM_{\mathrm{FM}}>>MEAFM_{\mathrm{AFM}} and finally the polarized itinerant electrons with finite MEFM_{\mathrm{FM}} but zero MEAFM_{\mathrm{AFM}}. While the ON_\mathrm{N} system was found to exist in all three phases, no tendency towards the formation of the polarized itinerant electrons was observed for the SiB_\mathrm{B} system though the existence of the other two phases was ascertained. The different behavior of these two systems is associated with the diverse features in the magnetization energy as a function of the oxygen and silicon concentrations. Finally, the robustness of the polarized itinerant electron phase is also discussed with respect to the O substitute atom distributions and the applied strains to the system.Comment: accepted by RP

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    Last time updated on 02/01/2020