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Journal Article

Unconventional superconductivity in magic-angle twisted trilayer graphene

MPS-Authors
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Kennes,  D. M.
Institute for Theory of Statistical Physics, RWTH Aachen University, and JARA Fundamentals of Future Information Technology;
Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society;
Center for Free Electron Laser Science;

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s41535-021-00410-w.pdf
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41535_2021_410_MOESM1_ESM.pdf
(Supplementary material), 7MB

Citation

Fischer, A., Goodwin, Z. A. H., Mostofi, A. A., Lischner, J., Kennes, D. M., & Klebl, L. (2022). Unconventional superconductivity in magic-angle twisted trilayer graphene. npj Quantum Materials, 7(1): 5. doi:10.1038/s41535-021-00410-w.


Cite as: https://hdl.handle.net/21.11116/0000-0008-FCD6-B
Abstract
Magic-angle twisted trilayer graphene (MATTG) recently emerged as a highly tunable platform for studying correlated phases of matter, such as correlated insulators and superconductivity. Superconductivity occurs in a range of doping levels that is bounded by van Hove singularities, which stimulates the debate of the origin and nature of superconductivity in this material. In this work, we discuss the role of spin-fluctuations arising from atomic-scale correlations in MATTG for the superconducting state. We show that in a phase diagram as a function of doping (ν) and temperature, nematic superconducting regions are surrounded by ferromagnetic states and that a superconducting dome with Tc ≈ 2 K appears between the integer fillings ν = −2 and ν = −3. Applying a perpendicular electric field enhances superconductivity on the electron-doped side which we relate to changes in the spin-fluctuation spectrum. We show that the nematic unconventional superconductivity leads to pronounced signatures in the local density of states detectable by scanning tunneling spectroscopy measurements.