Tuning the polarized quantum phonon transmission in graphene nanoribbons
arXiv:1409.6912 · doi:10.1088/0957-4484/26/30/305401
Abstract
We propose systems that allow a tuning of the phonon transmission function T() in graphene nanoribbons by using C isotope barriers, antidot structures, and distinct boundary conditions. Phonon modes are obtained by an interatomic fifth-nearest neighbor force-constant model (5NNFCM) and T() is calculated using the non-equilibrium Green's function formalism. We show that by imposing partial fixed boundary conditions it is possible to restrict contributions of the in-plane phonon modes to T() at low energy. On the contrary, the transmission functions of out-of-plane phonon modes can be diminished by proper antidot or isotope arrangements. In particular, we show that a periodic array of them leads to sharp dips in the transmission function at certain frequencies which can be pre-defined as desired by controlling their relative distance and size. With this, we demonstrated that by adequate engineering it is possible to govern the magnitude of the ballistic transmission functions T in graphene nanoribbons. We discuss the implications of these results in the design of controlled thermal transport at the nanoscale as well as in the enhancement of thermo-electric features of graphene-based materials.
References in corpus (9)
- Electric Field Effect in Atomically Thin Carbon Films
- Thermal properties of graphene: Fundamentals and applications
- Length-dependent thermal conductivity in suspended single-layer graphene
- The phonon dispersion of graphite by inelastic x-ray scattering
- Ballistic to diffusive crossover of heat flow in graphene ribbons
- Effect of Grain Boundaries on Thermal Transport in Graphene
- Giant thermoelectric effect in graphene-based topological insulators with nanopores
- The role of atomic vacancies and boundary conditions on ballistic thermal transport in graphene nanoribbons
- Single-mode phonon transmission in symmetry broken carbon nanotubes