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Spin-Orbit Driven Topological Phases in Kagome Materials

Published 24 Aug 2025 in cond-mat.mtrl-sci | (2508.17454v1)

Abstract: Kagome materials have garnered substantial attention owing to their diverse physical phenomena, yet canonical systems such as the AV<em>3<em>3Sb5_5 family exhibit poor Z</em>2Z</em>{2}-type topological properties, spurring an urgent quest for kagome platforms hosting ideal topological states. Recently, Zhou et al. proposed the kagome-type IAMX family, which exhibits distinctive ideal topological states; however, their analysis is primarily restricted to the spinless approximation. In this work, we model relativistic effects in the IAMX family, demonstrating that tuning the spin-orbit coupling (SOC) strength drives topological phase transitions and induces novel topological states, resulting in a rich phase diagram. The configuration of topological surface states evolves continuously as the SOC strength is modulated, consistent with the evolution of the topological phase transition. This suggests a viable route toward designing multi-functional topological devices. First-principles calculations performed on three specific IAMX compounds confirm that SOC governs their topological phases, in complete accord with our model analysis.

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