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Microwave Reflectometry for van der Waals 2D materials and heterostructures (Part-2): Superfluid stiffness of twisted trilayer graphene superconductors

ORAL

Abstract

The robustness of the macroscopic quantum nature of a superconductor can be characterized by the superfluid stiffness, a quantity that describes the energy required to vary the phase of the macroscopic quantum wave function. We report the measurement of superfluid stiffness in magic-angle twisted trilayer graphene (TTG), revealing unconventional nodal-gap superconductivity. Utilizing radio-frequency reflectometry techniques to measure the kinetic inductive response of superconducting TTG coupled to a microwave resonator, we find a linear temperature dependence of ρs at low temperatures and nonlinear Meissner effects in the current bias dependence, both indicating nodal structures in the superconducting order parameter. Furthermore, the doping dependence shows a linear correlation between the zero temperature ρs and the superconducting transition temperature Tc, reminiscent of Uemura's relation in cuprates, suggesting phase-coherence-limited superconductivity. Our results provide strong evidence for nodal superconductivity in TTG and put strong constraints on the mechanisms of these graphene-based superconductors.

Publication: arXiv:2406.13742

Presenters

  • Zeyu Hao

    Harvard University

Authors

  • Zeyu Hao

    Harvard University

  • Abhishek Banerjee

    Harvard University

  • Mary Kreidel

    Harvard University

  • Patrick J Ledwith

    Harvard University

  • Isabelle Yan Phinney

    Harvard University

  • Jeong Min Park

    Princeton University

  • Andrew Zimmerman

    Harvard University

  • Marie Elizabeth Wesson

    Harvard University

  • Kenji Watanabe

    National Institute for Materials Science, NIMS, Research Center for Functional Materials, National Institute for Materials Science, Research Center for Electronic and Optical Materials, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan, Research Center for Functional Materials, National Institute of Material Science, Tsukuba, Japan, National Institute of Materials Science, Advanced Materials Laboratory, National Institute for Materials Science

  • Takashi Taniguchi

    National Institute for Materials Science, International Center for Materials Nanoarchitectonics, National Institute for Materials Science, Research Center for Materials Nanoarchitectonics, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan, International Center for Materials Nanoarchitectonics, National Institute of Material Science, Tsukuba, Japan, Advanced Materials Laboratory, National Institute for Materials Science

  • Robert M Westervelt

    Harvard University

  • Amir Yacoby

    Harvard University

  • Pablo Jarillo-Herrero

    Massachusetts Institute of Technology

  • Pavel A. Volkov

    University of Connecticut

  • Ashvin Vishwanath

    Harvard University

  • Kin Chung Fong

    Raytheon BBN, Raytheon BBN Technologies, Northeastern University

  • Philip Kim

    Harvard University