Detection of graphene's divergent orbital diamagnetism at the Dirac point
arXiv:2012.05357 · doi:10.1126/science.abf9396
Abstract
The electronic properties of graphene have been intensively investigated over the last decade, and signatures of the remarkable features of its linear Dirac spectrum have been displayed using transport and spectroscopy experiments. In contrast, the orbital magnetism of graphene, which is one of the most fundamental signature of the characteristic Berry phase of graphene's electronic wave functions, has not yet been measured in a single flake. In particular, the striking prediction of a divergent diamagnetic response at zero doping calls for an experimental test. Using a highly sensitive Giant Magnetoresistance sensor (GMR) we have measured the gate voltage-dependent magnetization of a single graphene monolayer encapsulated between boron nitride crystals. The signal exhibits a diamagnetic peak at the Dirac point whose magnetic field and temperature dependences agree with theoretical predictions starting from the work of Mc Clure \cite{McClure1956}. Our measurements open a new field of investigation of orbital currents in graphene and 2D topological materials, offering a new means to monitor Berry phase singularities and explore correlated states generated by combined effects of Coulomb interactions, strain or moiré potentials.
6 pages 5 figures and supplemental material
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- Charge Conservation Beyond Uniformity: Spatially Inhomogeneous Electromagnetic Response in Periodic Solids
- De Haas-van Alphen effect in graphene
- Equilibrium current distributions and W_{infinity} gauge theory in quantum Hall systems of conventional electrons and Dirac electrons
- Persistent current distributions along a p-n junction in graphene in a magnetic field
- On equivalence of two formulas of orbital magnetic susceptibility for tight-binding models
- Insulator-Metal Transition and Magnetic Crossover in Bilayer Graphene
- Paramagnetic singularities of the orbital magnetism in graphene with a moiré potential