Field-Controlled Topological States in Atomically thin ScV<sub>6</sub>Sn<sub>6</sub> Kagome Metal
ORAL
Abstract
We investigate the topological properties of monolayer ScV6Sn6 kagome metal[1] using first-principles calculations. Unlike its paramagnetic bulk form, the single-layer system exhibits spontaneous magnetization (~0.86 μB/atom) with an ordering temperature near 89 K. The electronic structure displays Weyl-type band crossings near the chemical potential, which are gapped by spin-orbit interactions and yield a unit Chern invariant with chiral boundary modes. Berry curvature integration reveals an intrinsic Hall response of 257 Ω⁻¹cm⁻¹, comparable to other magnetic two-dimensional topological systems. Crucially, perpendicular electric fields enable topological phase control: the nontrivial character remains stable below 0.40 eV/Å but transitions to a trivial metallic state at this threshold, where edge modes disappear and the Chern number vanishes. 2D ScV6Sn6 emerges as a promising platform for electrically tunable topological phenomena, relevant to reconfigurable quantum technologies and voltage-controlled spintronic applications.
*This work is supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences Award DE-SC0024099. CCT@Lehigh provided computational resources.
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Publication: Chidiebere I. Nwaogbo, Sanjib K. Das, and Chinedu E. Ekuma. Tunable topological phase in 2d ScV6Sn6 kagome material. Materials Today Physics, 57:101780, 2025.
Presenters
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Chidiebere Nwaogbo
- Lehigh University