Valley relaxation in graphene due to charged impurities
arXiv:1502.05195 · doi:10.1103/PhysRevB.92.035420
Abstract
Monolayer graphene is an example of materials with multi-valley electronic structure. In such materials, the valley index is being considered as an information carrier. Consequently, relaxation mechanisms leading to loss of valley information are of interest. Here, we calculate the rate of valley relaxation induced by charged impurities in graphene. A special model of graphene is applied, where the orbitals are two-dimensional Gaussian functions, with a spatial extension characterised by an effective Bohr radius . We obtain the valley relaxation rate by solving the Boltzmann equation, for the case of noninteracting electrons, as well as for the case when the impurity potential is screened due to electron-electron interaction. For the latter case, we take into account local-field effects and evaluate the dielectric matrix in the random phase approximation. Our main findings: (i) The valley relaxation rate is proportional to the electronic density of states at the Fermi energy. (ii) Charged impurities located in the close vicinity of the graphene plane, at distance , are much more efficient in inducing valley relaxation than those farther away, the effect of the latter being suppressed exponentially with increasing graphene-impurity distance . (iii) Both in the absence and in the presence of electron-electron interaction, the valley relaxation rate shows pronounced dependence on the effective Bohr radius . The trends are different in the two cases: in the absence (presence) of screening, the valley relaxation rate decreases (increases) for increasing effective Bohr radius. This last result highlights that a quantitative calculation of the valley relaxation rate should incorporate electron-electron interactions as well as an accurate knowledge of the electronic wave functions on the atomic length scale.
15 pages, 8 figures
References in corpus (27)
- The electronic properties of graphene
- Valley polarization in MoS2 monolayers by optical pumping
- The Valley Hall Effect in MoS2 Transistors
- Valley filter and valley valve in graphene
- Dielectric function, screening, and plasmons in 2D graphene
- Carrier transport in 2D graphene layers
- Valley Dependent Optoelectronics from Inversion Symmetry Breaking
- Dynamical polarization of graphene at finite doping
- Weak localisation magnetoresistance and valley symmetry in graphene
- Strong suppression of weak (anti)localization in graphene
- Detecting Topological Currents in Graphene Superlattices
- Graphene valley filter using a line defect
- Weak localisation in graphene flakes
- Weak antilocalization in epitaxial graphene: evidence for chiral electrons
- Aharonov-Bohm effect and broken valley-degeneracy in graphene rings
- The Coulomb impurity problem in graphene
- Vacuum Polarization and Screening of Supercritical Impurities in Graphene
- Temperature Dependent Valley Relaxation Dynamics in Single Layer WS2 Measured Using Ultrafast Spectroscopy
- Intervalley coupling by quantum dot confinement potentials in monolayer transition metal dichalcogenides
- Valley polarization induced second harmonic generation in graphene
- Scattering theory of spin-orbit active adatoms on graphene
- Probing of valley polarization in graphene via optical second-harmonic generation
- Optical generation and detection of pure valley current in monolayer transition metal dichalcogenides
- Hybrid spin and valley quantum computing with singlet-triplet qubits
- Spin-valley relaxation and quantum transport regimes in two-dimensional transition metal dichalcogenides
- Spin and Valley Noise in Two-Dimensional Dirac Materials
- Orbital hyperfine interaction and qubit dephasing in carbon nanotube quantum dots
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