Phonon-assisted carrier cooling in h-BN/graphene van der Waals heterostructures
arXiv:2108.12894 · doi:10.1103/PhysRevB.105.245419
Abstract
Being used in optoelectronic devices as ultra-thin conductor-insulator junctions, detailed investigations are needed about how exactly h-BN and graphene hybridize. Here, we present a comprehensive ab initio study of hot carrier dynamics governed by electron-phonon scattering at the h-BN/graphene interface, using graphite (bulk), monolayer and bilayer graphene as benchmark materials. In contrast to monolayer graphene, all multilayer structures possess low-energy optical phonon modes that facilitate carrier thermalization. We find that the h-BN/graphene interface represents an exception with comparatively weak coupling between low-energy optical phonons and electrons. As a consequence, the thermalization bottleneck effect, known from graphene, survives hybridization with h-BN but is substantially reduced in all other bilayer and multilayer cases considered. In addition, we show that the quantum confinement in bilayer graphene does not have a significant influence on the thermalization time compared to graphite and that bilayer graphene can hence serve as a minimal model for the bulk counterpart.
6 figures, journal article
References in corpus (18)
- The electronic properties of graphene
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Boron nitride substrates for high-quality graphene electronics
- Intrinsic and Extrinsic Performance Limits of Graphene Devices on SiO2
- Micrometer-scale ballistic transport in encapsulated graphene at room temperature
- Ultrafast Photoluminescence from Graphene
- Intrinsic and extrinsic corrugation of monolayer graphene deposited on SiO2
- Origin of band gaps in graphene on hexagonal boron nitride
- Impact of the electron-electron correlation on phonon dispersions: failure of LDA and GGA functionals in graphene and graphite
- Phonon dispersions and vibrational properties of monolayer, bilayer, and trilayer graphene
- Electron-phonon coupling and electron self-energy in electron-doped graphene: calculation of angular resolved photoemission spectra
- Ab initio Electron Mobility and Polar Phonon Scattering in GaAs
- First-principles dynamics of electrons and phonons
- First-Principles Study of Electron Linewidths in Graphene
- Energy Flows in Graphene: Hot Carrier Dynamics and Cooling
- Phonons and electron-phonon coupling in graphene-h-BN heterostructures
- Electrical Contact between an Ultrathin Topological Dirac Semimetal and a Two-Dimensional Material
- Tunable Ultrafast Thermal Relaxation in Graphene Measured by Continuous-Wave Photomixing