Demonstration of Dissipative Quasihelical Edge Transport in Quantum Anomalous Hall Insulators
arXiv:2008.11996 · doi:10.1103/PhysRevLett.125.126801
Abstract
Doping a topological insulator (TI) film with transition metal ions can break its time-reversal symmetry and lead to the realization of the quantum anomalous Hall (QAH) effect. Prior studies have shown that the longitudinal resistance of the QAH samples usually does not vanish when the Hall resistance shows a good quantization. This has been interpreted as a result of the presence of possible dissipative conducting channels in magnetic TI samples. By studying the temperature- and magnetic field-dependence of the magnetoresistance of a magnetic TI sandwich heterostructure device, we demonstrate that the predominant dissipation mechanism in thick QAH insulators can switch between non-chiral edge states and residual bulk states in different magnetic field regimes. The interactions between bulk states, chiral edge states, and non-chiral edge states are also investigated. Our study provides a way to distinguish between the dissipation arising from the residual bulk states and non-chiral edge states, which is crucial for achieving true dissipationless transport in QAH insulators and for providing deeper insights into QAH-related phenomena.
References in corpus (13)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Quantized Anomalous Hall Effect in Magnetic Topological Insulators
- Three dimensional topological invariants for time reversal invariant Hamiltonians and the three dimensional quantum spin Hall effect
- High-precision realization of robust quantum anomalous Hall state in a hard ferromagnetic topological insulator
- Quantum Anomalous Hall Effect in HgMnTe Quantum Wells
- Trajectory of Anomalous Hall Effect toward the Quantized State in a Ferromagnetic Topological Insulator
- Gate-Voltage Control of Chemical Potential and Weak Anti-localization in Bismuth Selenide
- Scale-Invariant Dissipationless Chiral Transport in Magnetic Topological Insulators beyond the Two-Dimensional Limit
- Precise quantization of anomalous Hall effect near zero magnetic field
- On the classification of Quantum Spin Hall Models
- Giant Anisotropic Magnetoresistance in a Quantum Anomalous Hall Insulator
- Current-driven instability of quantum anomalous Hall effect in ferromagnetic topological insulators