Fluctuating magnetism and Pomeranchuk effect in multilayer graphene
arXiv:2407.13763 · doi:10.1038/s41586-025-08725-5
Abstract
Magnetism typically arises from the effect of exchange interactions on highly localized fermionic wave functions in f- and d-atomic orbitals. In rhombohedral multilayer graphene (RMG), in contrast, magnetism-manifesting as spontaneous polarization into one or more spin and valley flavors[1-7]-originates from itinerant electrons near a Van Hove singularity. Here, we show experimentally that the electronic entropy in this system shows signatures typically associated with disordered local magnetic moments, unexpected for electrons in a fully itinerant metal. Specifically, we find a contribution S 1k/charge carrier that onsets at the Curie temperature and survives over one order of magnitude in temperature. First order phase transitions show an isospin `Pomeranchuk effect' in which the fluctuating moment phase is entropically favored over the nearby symmetric Fermi liquid[8, 9]. Our results imply that despite the itinerant nature of the electron wave functions, the spin- and valley polarization of individual electrons are decoupled, a phenomenon typically associated with localized moments, as happens, for example, in solid 3He[10]. Transport measurements, surprisingly, show a finite temperature resistance minimum within the fluctuating moment regime, which we attribute to the interplay of fluctuating magnetic moments and electron phonon scattering. Our results highlight the universality of soft isospin modes to two-dimensional flat band systems.
References in corpus (30)
- Signatures of Fractional Quantum Anomalous Hall States in Twisted MoTe2 Bilayer
- Integer and fractional Chern insulators in twisted bilayer MoTe2
- Superconductivity in rhombohedral trilayer graphene
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Half and quarter metals in rhombohedral trilayer graphene
- MATBG as Topological Heavy Fermion: I. Exact Mapping and Correlated Insulators
- Entropic evidence for a Pomeranchuk effect in magic angle graphene
- Spin-Orbit Enhanced Superconductivity in Bernal Bilayer Graphene
- Electronic phase separation in topological surface states of rhombohedral graphite
- Quantum critical behavior in magic-angle twisted bilayer graphene
- Quantum cascade of new correlated phases in trigonally warped bilayer graphene
- Cascade of isospin phase transitions in Bernal bilayer graphene at zero magnetic field
- Correlated Insulator and Chern Insulators in Pentalayer Rhombohedral Stacked Graphene
- Towards the hidden symmetry in Coulomb interacting twisted bilayer graphene: renormalization group approach
- Orbital Multiferroicity in Pentalayer Rhombohedral Graphene
- Tunable superconductivity in electron- and hole-doped Bernal bilayer graphene
- Kondo lattice model in magic-angle twisted bilayer graphene
- Heavy fermion representation for twisted bilayer graphene systems
- Kondo Lattice Model of Magic-Angle Twisted-Bilayer Graphene: Hund's Rule, Local-Moment Fluctuations, and Low-Energy Effective Theory
- Heavy quasiparticles and cascades without symmetry breaking in twisted bilayer graphene
- Nematicity and Orbital Depairing in Superconducting Bernal Bilayer Graphene with Strong Spin Orbit Coupling
- Symmetric Kondo Lattice States in Doped Strained Twisted Bilayer Graphene
- Intervalley coherence and intrinsic spin-orbit coupling in rhombohedral trilayer graphene
- Kondo Phase in Twisted Bilayer Graphene -- A Unified Theory for Distinct Experiments
- Isospin Pomeranchuk effect and the entropy of collective excitations in twisted bilayer graphene
- Lattice Collective Modes from a Continuum Model of Magic-Angle Twisted Bilayer Graphene
- Interaction-driven (quasi-) insulating ground states of gapped electron-doped bilayer graphene
- Incommensurate inter-valley coherent states in ABC graphene: collective modes and superconductivity
- Phonon-limited resistivity of multilayer graphene systems
- Signatures of electronic ordering in transport in graphene flat bands