Dynamical Correlations and Order in Magic-Angle Twisted Bilayer Graphene

Author:

Rai Gautam1ORCID,Crippa Lorenzo2ORCID,Călugăru Dumitru3ORCID,Hu Haoyu4,Paoletti Francesca2,de’ Medici Luca5ORCID,Georges Antoine6789,Bernevig B. Andrei3410,Valentí Roser11ORCID,Sangiovanni Giorgio2ORCID,Wehling Tim112ORCID

Affiliation:

1. University of Hamburg

2. Universität Würzburg

3. Princeton University

4. Donostia International Physics Center

5. LPEM

6. Collège de France

7. Flatiron Institute

8. Centre de Physique Théorique

9. Université de Genève

10. IKERBASQUE

11. Goethe Universität Frankfurt

12. The Hamburg Centre for Ultrafast Imaging

Abstract

The interplay of dynamical correlations and electronic ordering is pivotal in shaping phase diagrams of correlated quantum materials. In magic-angle twisted bilayer graphene, transport, thermodynamic, and spectroscopic experiments pinpoint a competition between distinct low-energy states with and without electronic order, as well as between localized and delocalized charge carriers. In this study, we utilize dynamical mean-field theory on the topological heavy fermion model of twisted bilayer graphene to investigate the emergence of electronic correlations and long-range order in the absence of strain. We contrast moment formation, Kondo screening, and ordering on a temperature basis and explain the nature of emergent correlated states based on three central phenomena: (i) the formation of local spin and valley isospin moments around 100 K, (ii) the ordering of the local isospin moments around 10 K preempting Kondo screening, and (iii) a cascadic redistribution of charge between localized and delocalized electronic states upon doping. At integer fillings, we find that low-energy spectral weight is depleted in the symmetric phase, while we find insulating states with gaps enhanced by exchange coupling in the zero-strain ordered phases. Doping away from integer filling results in distinct metallic states: a “bad metal” above the ordering temperature, where scattering off the disordered local moments suppresses electronic coherence, and a “good metal” in the ordered states with coherence of quasiparticles facilitated by isospin order. This finding reveals coherence from order as the microscopic mechanism behind the Pomeranchuk effect observed experimentally by Rozen [] and by Saito []. Upon doping, there is a periodic charge reshuffling between localized and delocalized electronic orbitals leading to cascades of doping-induced Lifshitz transitions, local spectral weight redistributions, and periodic variations of the electronic compressibility ranging from nearly incompressible to negative. Our findings highlight the essential role of charge transfer, hybridization, and ordering in shaping the electronic excitations and thermodynamic properties in twisted bilayer graphene and provide a unified understanding of the most puzzling aspects of scanning tunneling spectroscopy, transport, and compressibility experiments. Published by the American Physical Society 2024

Funder

Graphene Flagship

Deutsche Forschungsgemeinschaft

Friedrich-Alexander-Universität Erlangen-Nürnberg

National Science Foundation

European Commission

U.S. Department of Energy

Simons Foundation

H2020 European Research Council

Horizon 2020 Framework Programme

Gordon and Betty Moore Foundation

Office of Naval Research

United States-Israel Binational Science Foundation

NHR

Würzburg-Dresden Cluster of Excellence on Complexity and Topology in Quantum Matter

Erlangen National High Performance Computing Center

Publisher

American Physical Society (APS)

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