4.8 Article

Pauli-limit violation and re-entrant superconductivity in moire graphene

Journal

NATURE
Volume 595, Issue 7868, Pages 526-+

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41586-021-03685-y

Keywords

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Funding

  1. US Department of Energy (DOE), Office of Basic Energy Sciences (BES), Division of Materials Sciences and Engineering [DE-SC0001819]
  2. National Science Foundation [DMR-0819762, DMR-1809802]
  3. STC Center for Integrated Quantum Materials (NSF) [DMR-1231319]
  4. Gordon and Betty Moore Foundation's EPiQS Initiative [GBMF9643]
  5. Fundacion Ramon Areces
  6. CIFAR Quantum Materials program
  7. US DOE Office of Science, BES [DE-SC0019300]
  8. Elemental Strategy Initiative by the MEXT, Japan [JPMXP0112101001]
  9. JSPS KAKENHI [JP20H00354]
  10. CREST, JST [JPMJCR15F3]
  11. NSF [ECS-0335765]

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The study of magic-angle twisted trilayer graphene has revealed unexpectedly strong superconductivity, surpassing the conventional Pauli limit. The results suggest that external magnetic fields can induce transitions between phases with potentially different order parameters.
Moire quantum matter has emerged as a materials platform in which correlated and topological phases can be explored with unprecedented control. Among them, magic-angle systems constructed from two or three layers of graphene have shown robust superconducting phases with unconventional characteristics(1-5). However, direct evidence of unconventional pairing remains to be experimentally demonstrated. Here we show that magic-angle twisted trilayer graphene exhibits superconductivity up to in-plane magnetic fields in excess of 10 T, which represents a large (2-3 times) violation of the Pauli limit for conventional spin-singlet superconductors(6,7). This is an unexpected observation for a system that is not predicted to have strong spin-orbit coupling. The Pauli-limit violation is observed over the entire superconducting phase, which indicates that it is not related to a possible pseudogap phase with large superconducting amplitude pairing. Notably, we observe re-entrant superconductivity at large magnetic fields, which is present over a narrower range of carrier densities and displacement fields. These findings suggest that the superconductivity in magic-angle twisted trilayer graphene is likely to be driven by a mechanism that results in non-spin-singlet Cooper pairs, and that the external magnetic field can cause transitions between phases with potentially different order parameters. Our results demonstrate the richness of moire superconductivity and could lead to the design of next-generation exotic quantum matter.

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