arXiv · 2604.10746
Half-quantized anomalous Hall conductance in topological insulator/ferromagnet van der Waals heterostructures
Abstract
The half-quantized anomalous Hall conductance (AHC) in topological materials is a condensed matter physics realization of the parity anomaly of (2+1) quantum field theory and an important challenge for both theoretical and experimental research. A possible realization of this phenomenon may be achieved by interfacing a two-dimensional (2D) ferromagnetic (FM) layer with one surface of a thin slab of a topological insulator (TI), which breaks the otherwise conserved time-reversal symmetry, leading to a gap opening in the Dirac-like energy spectrum of the TI surface states. The resulting heterostructure can support chiral currents where only one spin channel contributes to transport, producing a half-quantized Hall conductance ($e^2/2h$). In this work, using first-principles methods together with tight-binding models, we investigate the magnetization-induced gap, the properties of the sidewalls states, and Hall conductance in three different FI/TI van der Waals heterostructures that are relevant for ongoing experiments. We also discuss the factors that can hinder the realization of exact half-quantization in a realistic system and their implication for the quantum anomalous Hall effect and the topological magnetoelectric effect.
Explore related subjects
Keep this discovery
Shahid Sattar, Roman Stepanov, Alexander Tyner, M. F. Islam, A. H. MacDonald, C. M. Canali. 2026-04-12. Half-quantized anomalous Hall conductance in topological insulator/ferromagnet van der Waals heterostructures. https://arxiv.org/abs/2604.10746
Cite the original work for its findings. Save a collection to share your selection of sources.