Effective model for superconductivity in magic-angle graphene

Author:

Hou Disha1,Liu Yuhai2,Sato Toshihiro3,Assaad Fakher F.34,Guo Wenan156ORCID,Wang Zhenjiu78

Affiliation:

1. Department of Physics, Beijing Normal University, Beijing 100875, China

2. School of Science, Beijing University of Posts and Telecommunications, Beijing 100876, China

3. Institut für Theoretische Physik und Astrophysik, Universität Würzburg, 97074 Würzburg, Germany

4. Würzburg-Dresden Cluster of Excellence ct.qmat, Am Hubland, 97074 Würzburg, Germany

5. Key Laboratory of Multiscale Spin Physics (Ministry of Education), Beijing Normal University, Beijing 100875, China

6. Beijing Computational Science Research Center, 10 East Xibeiwang Road, Beijing 100193, China

7. Arnold Sommerfeld Center for Theoretical Physics, University of Munich, Theresienstrasse 37, 80333 Munich, Germany

8. Max-Planck-Institut für Physik komplexer Systeme, 01187 Dresden, Germany

Abstract

We carry out large-scale quantum Monte Carlo simulations of a candidate field theory for the onset of superconductivity in magic-angle twisted bilayer graphene. The correlated insulating state at charge neutrality spontaneously breaks U(1) Moiré valley symmetry. Owing to the topological nature of the bands, skyrmion defects of the order parameter carry charge 2e and condense upon doping. In our calculations we encode the U(1) symmetry by an internal degree of freedom such that it is not broken upon lattice regularization. Furthermore, the skyrmion carries the same charge. The nature of the doping-induced phase transitions depends on the strength of the easy-plane anisotropy that reduces the SU(2) valley symmetry to U(1)×Z2. For large anisotropy, we observe two distinct transitions separated by phase coexistence. While the insulator to superconducting transition is of mean-field character, the U(1) transition is consistent with three-dimensional XY criticality. Hence, the coupling between the gapless charge excitations of the superconducting phase and the XY order parameter is irrelevant. At small anisotropy, we observe a first-order transition characterized by phase separation. Published by the American Physical Society 2024

Funder

Deutsche Forschungsgemeinschaft

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Beijing University of Posts and Telecommunications

Seventh Framework Programme

Würzburg-Dresden Cluster of Excellence on Complexity and Topology

Publisher

American Physical Society (APS)

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