Symmetry-Indicated Time-Reversal-Doubled Axion Insulators

Abstract

The axion insulator exhibits a topological magnetoelectric effect characterized by an axion angle θ=π, while the time-reversal-doubled axion insulator (T-DAXI) can be viewed as two copies of an axion insulator related by time-reversal symmetry. In this work, we show that a topological crystalline insulator with nonsymmorphic glide or screw symmetry hosts the T-DAXI phase. The spin-resolved topology of the T-DAXI phase is guaranteed by the nonsymmorphic symmetry invariant δg=1 or δs=1 in certain spin directions. In this phase, the partial axion angles are quantized to π, and the gapped surfaces realize half-quantized quantum spin Hall states. By applying an external magnetic field along the z direction, electrons with opposite spins accumulate on opposite (001) surfaces, producing a topological spin polarization in real space. When the magnetic field is time-periodic, this leads to an alternating spin current detectable in experiment. Using ab initio calculations, we demonstrate that mixed bismuth monohalides Bi4Br3I and Bi4BrI3 realize the nonsymmorphic T-DAXI with δg=δs=1. Our findings not only reveal the symmetry-enforced T-DAXIs in nonsymmorphic topological crystalline insulators, but also introduce the spin magnetoelectric effect as a novel topological spin response.

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