Giant magnetoresistance of Dirac plasma in high-mobility graphene
arXiv:2302.06863 · doi:10.1038/s41586-023-05807-0
Abstract
The most recognizable feature of graphene's electronic spectrum is its Dirac point around which interesting phenomena tend to cluster. At low temperatures, the intrinsic behavior in this regime is often obscured by charge inhomogeneity but thermal excitations can overcome the disorder at elevated temperatures and create electron-hole plasma of Dirac fermions. The Dirac plasma has been found to exhibit unusual properties including quantum critical scattering and hydrodynamic flow. However, little is known about the plasma's behavior in magnetic fields. Here we report magnetotransport in this quantum-critical regime. In low fields, the plasma exhibits giant parabolic magnetoresistivity reaching >100% in 0.1 T even at room temperature. This is orders of magnitude higher than magnetoresistivity found in any other system at such temperatures. We show that this behavior is unique to monolayer graphene, being underpinned by its massless spectrum and ultrahigh mobility, despite frequent (Planckian-limit) scattering. With the onset of Landau quantization in a few T, where the electron-hole plasma resides entirely on the zeroth Landau level, giant linear magnetoresistivity emerges. It is nearly independent of temperature and can be suppressed by proximity screening, indicating a many-body origin. Clear parallels with magnetotransport in strange metals and so-called quantum linear magnetoresistance predicted for Weyl metals offer an interesting playground to further explore relevant physics using this well-defined quantum-critical 2D system.
8 pages, 3 figures
References in corpus (17)
- The electronic properties of graphene
- Room-Temperature Quantum Hall Effect in Graphene
- Titanic Magnetoresistance in WTe2
- Micrometer-scale ballistic transport in encapsulated graphene at room temperature
- Quantum critical transport in clean graphene
- Giant Nonlocality near the Dirac Point in Graphene
- On resonant scatterers as a factor limiting carrier mobility in graphene
- Charge Transport and Inhomogeneity near the Charge Neutrality Point in Graphene
- Hydrodynamics in graphene: Linear-response transport
- Conductivity of the defectless Graphene
- Collective cyclotron motion of the relativistic plasma in graphene
- Magnetotransport of single crystalline NbAs
- Magneto-resistance up to 60 Tesla in Topological Insulator Bi2Te3 Thin Films
- Magnetoresistance in two-component systems
- Dimensional reduction, quantum Hall effect and layer parity in graphite films
- Room-temperature colossal magnetoresistance in terraced single-layer graphene
- Extraordinary magnetoresistance in encapsulated monolayer graphene devices