arXiv · 2607.27331
Altermagnetism from a Cu-Fe Lieb Lattice in FeSe/Cuprate Heterostructures
Abstract
Realizing altermagnetism in high-$T_c$ cuprate-based systems would provide a direct route for studying spin-split electronic bands in the absence of net magnetization and investigate their interplay with unconventional superconductivity. Here, we propose that FeSe/cuprate heterostructures offer such a platform, where a 45$^\circ$ twist of Cu and Fe layers creates an effective CuFe$_2$ Lieb lattice in which Fe magnetic order and Cu-Fe hybridization through the ligands induces altermagnetic $d$-wave spin splitting. A minimal tight-binding model shows that this mechanism is generic. Furthermore, a substrate-induced inequivalence of the two Se sites in FeSe provides a second route in which altermagnetism originates in the Fe layer and is transferred to the cuprate layer by proximity. Density functional theory calculations for FeSe/Bi$_2$Sr$_2$CuO$_6$ heterostructures confirm the viability of both mechanisms and reveal ways to enhance the spin splitting. These results establish superconducting cuprate/transition metal chalcogenide heterostructures as a promising setting for engineering altermagnetism and studying its coupling to unconventional superconductivity.
Explore related subjects
Keep this discovery
Ying Li, Augustin Davignon, Peng Rao, Runhan Li, Maia G. Vergniory, Roser Valentí, Johannes Knolle. 2026-07-29. Altermagnetism from a Cu-Fe Lieb Lattice in FeSe/Cuprate Heterostructures. https://arxiv.org/abs/2607.27331
Cite the original work for its findings. Save a collection to share your selection of sources.