Oral: First-principles investigation of the electronic structure and magnetic properties of a van der Waals magnet.
ORAL
Abstract
Van der Waals (vdW) materials consist of low-dimensional, charge-neutral units with strong covalent bonds within the units and weak van der Waals interactions between them. Recent findings of magnetic ordering in these materials have heightened interest, with both two-dimensional and quasi-one-dimensional vdW magnets being reported. In our study, we utilized first-principles density functional theory (DFT) to explore the composition-dependent structure-property relationship in CrxMn1-xSbSe3 (x=0, 0.5, 1), a quasi-one-dimensional vdW magnet. By combining DFT-derived exchange coupling parameters with Monte Carlo simulations for spin dynamics, we estimated the Curie temperature, providing insights into the material's thermodynamic stability. Our calculated electronic structure, magnetic properties, and Curie temperature for CrSbSe3 are found to be in good agreement with experimental results, confirming it as a ferromagnetic semiconductor with a Curie temperature of approximately ~65K. Furthermore, we find that the concentration of Mn in CrxMn1-xSbSe3 significantly influences the system's electronic structure and magnetic properties, accompanied by a decrease in the Curie temperature with an increase in concentration.
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Presenters
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Alyssa Horne
Michigan Technological University
Authors
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Alyssa Horne
Michigan Technological University
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Matt Sisson
Michigan Technological University
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Yongmei Jin
Michigan Technological University
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Ranjit Pati
Michigan Technological University