Unconventional Metallic Magnetism: Non-analyticity and Sign-changing Behavior of Orbital Magnetization in ABC Trilayer Graphene
arXiv:2308.01996 · doi:10.1103/PhysRevB.109.L060409
Abstract
We study an unique form of metallic ferromagnetism in which orbital moments surpasses the role of spin moments in shaping the overall magnetization. This system emerges naturally upon doping a topologically non-trivial Chern band in the recently identified quarter metal phase of rhombohedral trilayer graphene. Our comprehensive scan of the density-interlayer potential parameter space reveals an unexpected landscape of orbital magnetization marked by two sign changes and a line of singularities. The sign change originates from an intense Berry curvature concentrated close to the band-edge, and the singularity arises from a topological Lifshitz transition that transform a simply connected Fermi sea into an annular Fermi sea. Importantly, these variations occur while the groundstate order-parameter (i.e. valley and spin polarization) remains unchanged. This unconventional relationship between the order parameter and magnetization markedly contrasts traditional spin ferromagnets, where spin magnetization is simply proportional to the groundstate spin polarization via the gyromagnetic ratio. We compute energy and magnetization curves as functions of collective valley rotation to shed light on magnetization dynamics and to expand the Stoner-Wohlfarth magnetization reversal model. We provide predictions on the magnetic coercive field that can be readily tested in experiments. Our results challenge established perceptions of magnetism, emphasising the important role of orbital moments in two-dimensional materials such as graphene and transition metal dichalcogenides, and in turn, expand our understanding and potential manipulation of magnetic behaviors in these systems.
4+8 pages
References in corpus (20)
- Orbital magnetization in periodic insulators
- Band Structure of ABC-Stacked Graphene Trilayers
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Quantum Theory of Orbital Magnetization and its Generalization to Interacting Systems
- Quantum cascade of new correlated phases in trigonally warped bilayer graphene
- Berry curvature dipole senses topological transition in a moiré superlattice
- Correlated Insulator and Chern Insulators in Pentalayer Rhombohedral Stacked Graphene
- Inter-valley coherent order and isospin fluctuation mediated superconductivity in rhombohedral trilayer graphene
- Superconductivity and correlated phases in non-twisted bilayer and trilayer graphene
- Orbital magnetism of coupled bands models
- Competing correlated states and abundant orbital magnetism in twisted monolayer-bilayer graphene
- Spin and Orbital Metallic Magnetism in Rhombohedral Trilayer Graphene
- Interaction-driven topological phase diagram of twisted bilayer MoTe
- Adiabatically Induced Orbital Magnetization
- Flavor symmetry breaking in spin-orbit coupled bilayer graphene
- Correlated Phases in Spin-Orbit-Coupled Rhombohedral Trilayer Graphene
- Current-induced orbital magnetization in systems without inversion symmetry
- Intrinsic spin Hall torque in a moire Chern magnet
- Phase diagram and orbital Chern insulator in twisted double bilayer graphene
- Chirality and correlations in the spontaneous spin-valley polarization of rhombohedral multilayer graphene
Cited by in corpus (5)
- Intervalley coherence and intrinsic spin-orbit coupling in rhombohedral trilayer graphene
- Nonlinear optical responses and quantum geometry in rhombohedral trilayer graphene
- Quarter-Metal Phases in Multilayer Graphene: Ising-XY and Annular Lifshitz Transitions
- Orbital Magnetization and Streda Formula of Interacting Electrons in the Mean-field Approximation
- Superpolarized Electron-Hole Liquid and Multiferroicity in Multilayer Graphene