Magnetic Order and Strain in Hexagonal Manganese Pnictide CaMn<sub>2</sub>Bi<sub>2</sub>
ORAL
Abstract
The manganese pnictide CaMn2Bi2, with Mn atoms arranged in a puckered honeycomb structure, shows narrow-gap antiferromagnetism, and it is currently a promising candidate for studying complex electronic and magnetic phenomena, such as magnetotransport effects and potential spin spirals under high pressure. In this paper, we perform a detailed research of the magnetic properties of CaMn2Bi2 using density functional theory (DFT) combined with the Hubbard U correction and spin-orbit coupling, which accurately describe the magnetic interactions. Our results obtained for a large number of magnetic configurations are accurately captured by a modified Heisenberg model that includes on-site magnetization terms required to describe magnetic energy excitations. We further study the role of the spin-orbit coupling, and find that the magnetic anisotropy of CaMn2Bi2 shows an easy plane, with the preferred magnetization direction exchanged between axes in the plane by applying small strain values. This strain-tunable magnetization, driven by the interplay between spin-orbit interactions and lattice distortions, highlights the potential for controlling magnetic states in Mn-pnictides for future applications in spintronic and magnetoelectric devices.
*We acknowledge funding from the Spanish Ministry of Science and Innovation (grants nos. PID2022-139230NB-I00, and TED2021-132074B-C32), the Gobierno Vasco UPV/EHU (project no. IT-1569-22), the Diputación Foral de Gipuzkoa (Project No. 2023-CIEN-000077-01), the European Commission MIRACLE project (GA 964450), and NaturSea-PV (GA 101084348). Research conducted in the scope of the Transnational Common Laboratory (LTC) Aquitaine-Euskadi Network in Green Concrete and Cement-based Materials.
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Presenters
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Andres Ayuela
- Centro de Física de Materiales-MPC (CSIC-UPV/EHU)