Quasiparticle and superfluid dynamics in Magic-Angle Graphene
arXiv:2405.06793 · doi:10.1038/s41467-025-58325-0
Abstract
Magic-Angle Twisted Bilayer Graphene shows a wide range of correlated phases which are electrostatically tunable. Despite a growing knowledge of the material, there is yet no consensus on the microscopic mechanisms driving its superconducting phase. In particular, elucidating the symmetry and formation mechanism of the superconducting phase may provide key insights for the understanding of unconventional, strongly coupled and topological superconductivity. A major obstacle to progress in this direction is that key thermodynamic properties, such as specific heat, electron-phonon coupling and superfluid stiffness, are extremely challenging to measure due to the 2D nature of the material and its relatively low energy scales. Here, we use a gate-defined, radio frequency-biased, Josephson junction to probe the electronic dynamics of magic-angle twisted bilayer graphene (MATBG). We reveal both the electronic quasiparticle dynamics, driven by their thermalization through phonon scattering, as well as the condensate dynamics, driven by the inertia of Cooper pairs. From these properties we recover the evolution of thermalization rates, and the superfluid stiffness across the phase diagram. Our findings favor an anisotropic or nodal pairing state and allow to estimate the strength of electron-phonon coupling. These results contribute to understanding the underlying mechanisms of superconductivity in MATBG while establishing an easy-to-implement method for characterizing thermal and superfluid properties of superconducting 2D materials.
9 pages, 5 figures
References in corpus (30)
- Magic-angle graphene superlattices: a new platform for unconventional superconductivity
- Correlated Insulator Behaviour at Half-Filling in Magic Angle Graphene Superlattices
- Superconductors, Orbital Magnets, and Correlated States in Magic Angle Bilayer Graphene
- Theory of phonon-mediated superconductivity in twisted bilayer graphene
- Cascade of Phase Transitions and Dirac Revivals in Magic Angle Graphene
- Mapping the twist angle and unconventional Landau levels in magic angle graphene
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Phonon scattering dominated electron transport in twisted bilayer graphene
- Twisted Bilayer Graphene: A Phonon Driven Superconductor
- An exact continuum model for low-energy electronic states of twisted bilayer graphene
- Electron-phonon heat transfer in monolayer and bilayer graphene
- Strong Correlations and d+id Superconductivity in Twisted Bilayer Graphene
- Coupled Ferroelectricity and Superconductivity in Bilayer -MoTe
- Phonon-induced giant linear-in- resistivity in magic angle twisted bilayer graphene: Ordinary strangeness and exotic superconductivity
- Entropic evidence for a Pomeranchuk effect in magic angle graphene
- Quantum critical behavior in magic-angle twisted bilayer graphene
- Moiré phonons in the twisted bilayer graphene
- Gate-Defined Josephson Junctions in Magic-Angle Twisted Bilayer Graphene
- Proximity DC squids in the long junction limit
- Graphene-based Josephson junction single photon detector
- Highly Tunable Junctions and Nonlocal Josephson Effect in Magic Angle Graphene Tunneling Devices
- Kinetic impedance and depairing in thin and narrow superconducting films
- A Tunable Monolithic SQUID in Twisted Bilayer Graphene
- Magic-angle bilayer graphene nano-calorimeters -- towards broadband, energy-resolving single photon detection
- Revealing the ultra-sensitive calorimetric properties of supercon-ducting magic-angle twisted bilayer graphene
- Evidence for Two Time Scales in Long SNS Junctions
- Tunable electron-phonon interactions in long-period superlattices
- Strange metallicity of moiré twisted bilayer graphene
- Measurement of the electronic thermal conductance channels and heat capacity of graphene at low temperature
- Acoustic phonon contribution to the resistivity of twisted bilayer graphene