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Surfaces of axion insulators

DOI:10.1103/PhysRevB.98.245117 期刊:Physical Review B 出版年份:2018 更新时间:2025-09-04 15:30:14
摘要: Axion insulators are magnetic topological insulators in which the nontrivial Z2 index is protected by inversion symmetry instead of time-reversal symmetry. The naturally gapped surfaces of axion insulators give rise to a half-quantized surface anomalous Hall conductivity (AHC), but the sign of the surface AHC cannot be determined from topological arguments. In this paper, we consider topological phenomena at the surface of an axion insulator. To be explicit, we construct a minimal tight-binding model on the pyrochlore lattice and investigate the all-in-all-out (AIAO) and ferromagnetic (FM) spin configurations. We also implement a recently proposed approach for calculating the surface AHC directly, which allows us to explore how the interplay between surface termination and magnetic ordering determines the sign of the half-quantized surface AHC. In the case of AIAO ordering, we show that it is possible to construct a topological state with no protected metallic states on boundaries of any dimension (surfaces, hinges, or corners), although chiral hinge modes do occur for many surface configurations. In the FM case, rotation of the magnetization by an external field offers promising means of control of chiral hinge modes, which can also appear on surface steps or where bulk domain walls emerge at the surface.
作者: Nicodemos Varnava,David Vanderbilt
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Investigating the topological phenomena at the surface of an axion insulator, focusing on the sign of the half-quantized surface anomalous Hall conductivity (AHC) and its dependence on surface termination and magnetic ordering.

The study demonstrates that the sign of the surface AHC in axion insulators is highly sensitive to surface magnetic configuration and termination. It shows how manipulation of surface structural and magnetic configurations can control the presence and direction of chiral edge and step channels, offering potential for novel quantum switches or sensors. The search for bulk intrinsic axion insulators remains a challenge for the condensed-matter community.

The study is theoretical and based on a minimal tight-binding model, which may not fully capture the complexity of real materials. The model does not describe real insulating pyrochlore iridates with AIAO magnetic order, which are believed to lie in the trivial insulator portion of the phase diagram.

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