Influence of nitrogen dopants on the magnetization of cobalt-nitride clusters
ORAL
Abstract
Using a real-space pseudopotential approach within the density-functional theory, which is implemented in the PARSEC code, we show that the magnetization of a cobalt-nitride cluster is significantly affected by nitrogen dopants. In particular, we focus on Co3N clusters with recently-discovered hexagonal P63/mmc and rhombohedral R-3c structures. In a hexagonal Co3N cluster, N dopants promote spin polarization for the Co–3d electrons, leading to a large total magnetic moment, which can be as strong as bulk iron. In contrast, N dopants in a rhombohedral Co3N cluster degrade magnetic moment and the dopants are magnetically ``dead,'' which results in lower total magnetic moments in rhombohedral Co3N clusters. These changes in magnetic moment originate from the difference in an orbital hybridization between the Co–3d and N–2p states. We also examine how the magnetization of a Co3N cluster depends on a N content. We find that the total magnetic moment of a hexagonal Co3N1+x cluster with -0.15 < x < 0.15 is tunable and can be enhanced further by controlling the amount of nitrogen dopants.
*This work is supported by the National Science Foundation (NSF), DMREF-1729202. HPC resources were provided by the Texas Advanced Computing Center (TACC) through XSEDE allocation MCA08X029.
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Presenters
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Masahiro Sakurai
- The University of Texas at Austin