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Spontaneous time-reversal symmetry breaking in twisted double bilayer graphene

Physics

Spontaneous time-reversal symmetry breaking in twisted double bilayer graphene

M. Kuiri, C. Coleman, et al.

Delve into the fascinating world of twisted double bilayer graphene (tDBG), where an anomalous Hall effect and spontaneous time-reversal symmetry breaking reveal insights into valley ferromagnetism. This groundbreaking research conducted by Manabendra Kuiri and colleagues explores the intricate coupling of spin and valley properties within a correlated metallic state.

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~3 min • Beginner • English
Abstract
Twisted double bilayer graphene (tDBG) comprises two Bernal-stacked bilayer graphene sheets with a twist between them. Gate voltages applied to top and back gates of a tDBG device tune both the flatness and topology of the electronic bands, enabling an unusual level of experimental control. Metallic states with broken spin and valley symmetries have been observed in tDBG devices with twist angles in the range 1.2–1.3°, but the topologies and order parameters of these states have remained unclear. We report the observation of an anomalous Hall effect in the correlated metal state of tDBG, with hysteresis loops spanning hundreds of mT in out-of-plane magnetic field (B⊥) that demonstrate spontaneously broken time-reversal symmetry. The B⊥ hysteresis persists for in-plane fields up to several Tesla, suggesting valley (orbital) ferromagnetism. At the same time, the resistivity is strongly affected by even mT-scale values of in-plane magnetic field, pointing to spin-valley coupling or to a direct orbital coupling between in-plane field and the valley degree of freedom.
Publisher
Nature Communications
Published On
Oct 29, 2022
Authors
Manabendra Kuiri, Christopher Coleman, Zhenxiang Gao, Aswin Vishnuradhan, Kenji Watanabe, Takashi Taniguchi, Jihang Zhu, Allan H. MacDonald, Joshua Folk
Tags
twisted double bilayer graphene
anomalous Hall effect
valley ferromagnetism
spin-valley coupling
Coulomb interactions
correlated metallic state
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