MRS Meetings and Events

 

QT10.06.01 2022 MRS Spring Meeting

Imaging Chern Mosaic and Berry-Curvature Magnetism in Magic-Angle Graphene

When and Where

May 23, 2022
8:00am - 8:30am

QT10-Virtual

Presenter

Co-Author(s)

Eli Zeldov1,Sameer Grover1,Matan Bocarsly1,Aviram Uri1,Petr Stepanov2,Giorgio Di Battista2,Indranil Roy1,Jiewen Xiao1,Alexander Meltzer1,Yuri Myasoedov1,Keshav Pareek1,Kenji Watanabe3,Takashi Taniguchi3,Binghai Yan1,Ady Stern1,Erez Berg1,Dmitri Efetov2

Weizmann Institute of Science1,ICFO–The Institute of Photonic Sciences2,NIMS3

Abstract

Eli Zeldov1,Sameer Grover1,Matan Bocarsly1,Aviram Uri1,Petr Stepanov2,Giorgio Di Battista2,Indranil Roy1,Jiewen Xiao1,Alexander Meltzer1,Yuri Myasoedov1,Keshav Pareek1,Kenji Watanabe3,Takashi Taniguchi3,Binghai Yan1,Ady Stern1,Erez Berg1,Dmitri Efetov2

Weizmann Institute of Science1,ICFO–The Institute of Photonic Sciences2,NIMS3
Charge carriers in magic angle graphene come in eight flavors described by a combination of their spin, valley, and sublattice polarizations. When the inversion and time reversal symmetries are broken by the substrate or by strong interactions, eight low-energy electronic flat bands are formed, each accommodating a single flavor, which can be filled sequentially. Due to their non-trivial band topology and Berry curvature, each of the bands is classified by a topological Chern number, leading to the quantum anomalous Hall and Chern insulator states at integer fillings ν of the bands. It has been recently predicted, however, that depending on the local atomic-scale arrangements of the graphene and the encapsulating hBN lattices, rather than being a global topological invariant, the Chern number C may become position dependent, altering transport and magnetic properties of the itinerant electrons. Using scanning superconducting quantum interference device on a tip (SQUID-on-tip), we directly image the nanoscale Berry-curvature-induced equilibrium orbital magnetism, the polarity of which is governed by the local Chern number, and detect its two constituent components associated with the drift and the self-rotation of the electronic wave packets. At ν=1, we observe local zero-field valley-polarized Chern insulators forming a mosaic of microscopic patches of C=-1, 0, or 1, governed by the local sublattice polarization, consistent with predictions. Upon further filling, we find abrupt recondensation of electrons from valley K to K', which leads to irreversible flips of the local Chern number and magnetization and to the formation of valley domain walls giving rise to hysteretic global anomalous Hall resistance. The findings shed new light on the structure and dynamics of topological phases and call for exploration of the controllable formation of flavor domain walls and their utilization in twistronic devices.

Keywords

electronic structure | magnetic properties

Symposium Organizers

Giulia Pacchioni, Nature Reviews Materials
Dmitri Efetov, Institut de Ciències Fotôiques
Jia Leo Li, Brown University
Matthew Yankowitz, University of Washington

Symposium Support

Platinum
Gordon and Betty Moore Foundation

Bronze
Scienta Omicron, Inc.

Publishing Alliance

MRS publishes with Springer Nature