Visualizing the breakdown of the quantum anomalous Hall effect

G G. M Ferguson (Department of Physics, Laboratory of Atomic and Solid-State Physics) R Run Xiao (Department of Physics and Materials Research Institute) A Anthony R. Richardella (Department of Physics and Materials Research Institute) A Austin Kaczmarek (Department of Physics, Laboratory of Atomic and Solid-State Physics) N Nitin Samarth (Department of Physics, The Pennsylvania State University) K Katja C. Nowack (Department of Physics, Laboratory of Atomic and Solid-State Physics)

Abstract

The creation of topologically nontrivial matter across electronic, mechanical, cold-atom, and photonic platforms is advancing rapidly, yet understanding the breakdown of topological protection remains a major challenge. In this work, we use magnetic imaging combined with global electrical transport measurements to visualize the current-induced breakdown of the quantum anomalous Hall effect (QAHE) in a magnetically doped topological insulator. We find that dissipation emerges at localized hot spots near electrical contacts, where an abrupt change in Hall angle leads to significant distortions of the current density. Using changes in the local magnetization as a proxy for electron temperature, we directly observe that the electrons are driven out of equilibrium with the lattice at the hot spots and throughout the device in the breakdown regime. By characterizing energy relaxation processes in our device, we show that the breakdown of quantization is governed entirely by electron heating, and that a vanishing thermal relaxation strength at millikelvin temperatures limits the robustness of the QAHE. Our findings provide a framework for diagnosing energy relaxation in topological materials and will guide realizing robust topological protection in magnetic topological insulators.

Article Details

Volume / Issue Vol. 123, Issue 11
Published March 17, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

G

G. M Ferguson

Department of Physics, Laboratory of Atomic and Solid-State Physics

R

Run Xiao

Department of Physics and Materials Research Institute

A

Anthony R. Richardella

Department of Physics and Materials Research Institute

A

Austin Kaczmarek

Department of Physics, Laboratory of Atomic and Solid-State Physics

N

Nitin Samarth

Department of Physics, The Pennsylvania State University

K

Katja C. Nowack

Department of Physics, Laboratory of Atomic and Solid-State Physics