Remanent anomalous Hall effect from dual spin-orbit and exchange proximity in graphene heterostructure

Seminar Research
On  September 24, 2026
Alexandra Bernard (Walter Schottky Institute, TU Munich) will give a Quantum Materials Seminar on Thursday the 24th of September at 2PM in the Neel Institute Room K223 Remy Lemaire.

The coexistence of induced spin-orbit coupling (SOC) and magnetic exchange fields is predicted to drive graphene into topological phases, such as the quantum anomalous Hall state. In this talk, I will discuss the prospect of using monolayer graphene proximitized by WSe2 (SOC) and Cr2Ge2Te6 (magnetic exchange) to reach such “ex-so-tic” states. Low-temperature magnetotransport measurements of the heterostructures reveal a large and gate-tunable remanent anomalous Hall effect (AHE) persisting at zero magnetic field. Combining data analysis over various magnetic field ranges and a simple model, we explain our findings by an intrinsic AHE regime, where Berry curvature hot-spots from the interplay of SOC and magnetism dominate the Hall response, but disorder broadening prevents quantization and a full topological phase transition. These results demonstrate the potential of double proximity effects in graphene-based van der Waals heterostructures as a route toward gate-tunable topological graphene phases and devices based on chiral edge states.

Published on  August 24, 2026
Updated on  August 24, 2026