Abstract
AbstractAxion insulators possess a quantized axion field θ = π protected by combined lattice and time-reversal symmetry, holding great potential for device applications in layertronics and quantum computing. Here, we propose a high-spin axion insulator (HSAI) defined in large spin-s representation, which maintains the same inherent symmetry but possesses a notable axion field θ = (s + 1/2)2π. Such distinct axion field is confirmed independently by the direct calculation of the axion term using hybrid Wannier functions, layer-resolved Chern numbers, as well as the topological magneto-electric effect. We show that the guaranteed gapless quasi-particle excitation is absent at the boundary of the HSAI despite its integer surface Chern number, hinting an unusual quantum anomaly violating the conventional bulk-boundary correspondence. Furthermore, we ascertain that the axion field θ can be precisely tuned through an external magnetic field, enabling the manipulation of bonded transport properties. The HSAI proposed here can be experimentally verified in ultra-cold atoms by the quantized non-reciprocal conductance or topological magnetoelectric response. Our work enriches the understanding of axion insulators in condensed matter physics, paving the way for future device applications.
Funder
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Reference55 articles.
1. El-Batanouny, M. & Wooten, F. Symmetry and Condensed Matter Physics: A Computational Approach Vol. 936, (Cambridge University Press, 2008).
2. Goldhaber, A. et al. Symmetry and Modern Physics Vol. 304 (World Scientific, 2003).
3. Zee, A. Fearful Symmetry: The Search for Beauty in Modern Physics Revised Vol. 48 (Princeton University Press, 2015).
4. McGreevy, J. Generalized symmetries in condensed matter. Annu. Rev. Condens. Matter Phys. 14, 57–82 (2023).
5. Qi, X.-L. & Zhang, S.-C. Topological insulators and superconductors. Rev. Mod. Phys. 83, 1057–1110 (2011).