Measurement of Collective Dynamical Mass of Dirac Fermions in Graphene
arXiv:1401.4240 · doi:10.1038/nnano.2014.112
Abstract
Individual electrons in graphene behave as massless quasiparticles. In surprising twist, it is inferred from plasmonic investigations that collectively excited graphene electrons must exhibit non-zero mass and its inertial acceleration is essential for graphene plasmonics. Despite such importance, this collective mass has defied direct unequivocal measurement. It may be directly measured by accelerating it with a time-varying voltage and quantifying the phase delay of the resulting current; this voltage-current phase relation would manifest as kinetic inductance, representing the collective inertia's reluctance to accelerate. However, at optical (infrared) frequencies phase measurement of current is generally difficult and at microwave frequencies the inertial phase delay has been buried under electron scattering. Here we directly, precisely measure the kinetic inductance, thus, collective mass, by combining innovative device engineering that reduces electron scattering and delicate microwave phase measurements. Particularly, encapsulation of graphene between hexagonal-boron-nitride layers, one-dimensional edge contacts, and a proximate top gate configured as microwave ground together enable resolving the inertial phase delay from the electron scattering. Beside the fundamental importance, the kinetic inductance demonstrated here to be orders-of-magnitude larger than magnetic inductance can dramatically miniaturize radio-frequency integrated circuits. Moreover, its bias-dependency heralds a solid-state voltage-controlled inductor to complement the prevalent voltage-controlled capacitor.
References in corpus (8)
- The electronic properties of graphene
- Boron nitride substrates for high-quality graphene electronics
- Graphene plasmonics
- Dielectric function, screening, and plasmons in 2D graphene
- Manipulating infrared photons using plasmons in transparent graphene superlattices
- Fermi velocity engineering in graphene by substrate modification
- Tuning the effective fine structure constant in graphene: opposing effects of dielectric screening on short- and long-range potential scattering
- Drude weight, plasmon dispersion, and a.c. conductivity in doped graphene sheets
Cited by in corpus (17)
- Electron Thermionic Emission from Graphene and a Thermionic Energy Converter
- Self-biased Reconfigurable Graphene Stacks for Terahertz Plasmonics
- Chiral plasmons without magnetic field
- Imaging Cyclotron Orbits of Electrons in Graphene
- Linear response of twisted bilayer graphene: continuum vs. tight-binding models
- Plasmon modes of a massive Dirac plasma, and their superlattices
- Drift-induced modifications to the dynamical polarization of graphene
- Contact doping, Klein tunneling, and asymmetry of shot noise in suspended graphene
- Microwave calibration of qubit drive line components at millikelvin temperatures
- Surface plasmons in a semi-bounded massless Dirac plasma
- Quantum hydrodynamic modeling of edge modes in chiral Berry plasmons
- Non-local quantum effects in plasmons of graphene superlattices
- Plasmon Fizeau drag in 3D Dirac and Weyl semimetals
- Electro-Optics of Current-carrying Graphene
- Extraordinary wavelength reduction in terahertz graphene-cladded photonic crystal slabs
- On corrected formula for graphene quantum conductivity
- Nanoantenna properties of graphene membrane. Quantum theory