Ferroelectric and anomalous quantum Hall states in bare rhombohedral trilayer graphene

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Winterer, Felix, Geisenhof, Fabian R., Fernandez, Noelia, Seiler, Anna M., Zhang, Fan, Weitz, R. Thomas
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914928557817856
author Winterer, Felix
Geisenhof, Fabian R.
Fernandez, Noelia
Seiler, Anna M.
Zhang, Fan
Weitz, R. Thomas
author_facet Winterer, Felix
Geisenhof, Fabian R.
Fernandez, Noelia
Seiler, Anna M.
Zhang, Fan
Weitz, R. Thomas
contents Nontrivial interacting phases can emerge in elementary materials. As a prime example, continuing advances in device quality have facilitated the observation of a variety of spontaneous quantum Hall-like states, a cascade of Stoner-like magnets, and an unconventional superconductor in bilayer graphene. Its natural extension, rhombohedral trilayer graphene is predicted to be even more susceptible to interactions given its even flatter low-energy bands and larger winding number. Theoretically, five spontaneous quantum Hall phases have been proposed to be candidate ground states. Here, we provide transport evidence for observing four of the five competing ordered states in interaction-maximized, dually-gated, rhombohedral trilayer graphene. In particular, at vanishing but finite magnetic fields, two states with Chern numbers 3 and 6 can be stabilized at elevated and low electric fields, respectively, and both exhibit clear magnetic hysteresis. We also reveal that the quantum Hall ferromagnets of the zeroth Landau level are ferroelectrics with spontaneous layer polarizations even at zero electric field, as evidenced by electric hysteresis. Our findings exemplify the possible birth of rich interacting electron physics in a simple elementary material.
format Preprint
id arxiv_https___arxiv_org_abs_2305_04950
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Ferroelectric and anomalous quantum Hall states in bare rhombohedral trilayer graphene
Winterer, Felix
Geisenhof, Fabian R.
Fernandez, Noelia
Seiler, Anna M.
Zhang, Fan
Weitz, R. Thomas
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Nontrivial interacting phases can emerge in elementary materials. As a prime example, continuing advances in device quality have facilitated the observation of a variety of spontaneous quantum Hall-like states, a cascade of Stoner-like magnets, and an unconventional superconductor in bilayer graphene. Its natural extension, rhombohedral trilayer graphene is predicted to be even more susceptible to interactions given its even flatter low-energy bands and larger winding number. Theoretically, five spontaneous quantum Hall phases have been proposed to be candidate ground states. Here, we provide transport evidence for observing four of the five competing ordered states in interaction-maximized, dually-gated, rhombohedral trilayer graphene. In particular, at vanishing but finite magnetic fields, two states with Chern numbers 3 and 6 can be stabilized at elevated and low electric fields, respectively, and both exhibit clear magnetic hysteresis. We also reveal that the quantum Hall ferromagnets of the zeroth Landau level are ferroelectrics with spontaneous layer polarizations even at zero electric field, as evidenced by electric hysteresis. Our findings exemplify the possible birth of rich interacting electron physics in a simple elementary material.
title Ferroelectric and anomalous quantum Hall states in bare rhombohedral trilayer graphene
topic Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2305.04950