Quantum Anomalous Hall Effect in d10 Oxide Monolayers
Zeyu Li, Xudong Zhu, Yulei Han, Zhenhua Qiao
Abstract
Quantum anomalous Hall effect (QAHE) arises from the interplay between magnetic order and spin-orbit coupling, which opens up a topologically nontrivial band gap to host chiral edge states in the absence of magnetic field. So far, magnetic order of QAHE usually originates from partially filled transition-metal d orbitals or correlation-driven moiré bands. Here, we propose an experimentally accessible family of two-dimensional oxides, M2DO6 (M = Zn, Cd; D = Se, Te), that can realize QAHE from the half-filled O-2p orbital induced spontaneous ferromagnetism. In M2DO6 monolayers, spin-polarized Dirac points appear at K/K valleys and along Γ-K/Γ-K lines. C3 rotational symmetry then generates eight symmetry-related crossings in the first Brillouin zone. Upon gap opening by spin-orbit coupling, each massive Dirac point contributes half Chern number, resulting in a high-Chern-number QAHE phase with C=4. We establish cation deintercalation as a general strategy to activate O-2p ferromagnetism in oxides. Our finding provides a route to realize QAHE from O-2p ferromagnetism and offers design principles applicable to oxygen-based magnetic topology platforms beyond conventional d-electron systems.
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