Enhanced thermoelectric properties in hybrid graphene-boron nitride nanoribbons
arXiv:1204.1445 · doi:10.1103/PhysRevB.86.045425
Abstract
The thermoelectric properties of hybrid graphene-boron nitride nanoribbons (BCNNRs) are investigated using the non-equilibrium Green's function (NEGF) approach. We find that the thermoelectric figure of merit (ZT) can be remarkably enhanced by periodically embedding hexagonal BN (h-BN) into graphene nanoribbons (GNRs). Compared to pristine GNRs, the ZT for armchair-edged BCNNRs with width index 3p+2 is enhanced up to 10~20 times while the ZT of nanoribbons with other widths is enhanced just by 1.5~3 times. As for zigzag-edge nanoribbons, the ZT is enhanced up to 2~3 times. This improvement comes from the combined increase in the Seebeck coefficient and the reduction in the thermal conductivity outweighing the decrease in the electrical conductance. In addition, the effect of component ratio of h-BN on the thermoelectric transport properties is discussed. These results qualify BCNNRs as a promising candidate for building outstanding thermoelectric devices.
21 pages, 7 figures
References in corpus (11)
- Electric Field Effect in Atomically Thin Carbon Films
- Two Dimensional Atomic Crystals
- Carrier transport in 2D graphene layers
- Thermoelectric and Magnetothermoelectric Transport Measurements of Graphene
- Quantum thermal transport in nanostructures
- Nonequilibrium Green's Function Approach to Phonon Transport in Defective Carbon Nanotubes
- Quantum conductance of graphene nanoribbons with edge defects
- Tight--binding description of the quasiparticle dispersion of graphite and few--layer graphene
- Half Metallicity in Hybrid BCN Nanoribbons
- Minimum thermal conductance in graphene and boron nitride superlattice
- Coupled electron and phonon transport in one-dimensional atomic junctions
Cited by in corpus (18)
- Thermoelectric properties of atomic-thin silicene and germanene nano-structures
- Thermal transport in nanostructures
- Classical to quantum transition of near-field heat transfer between two nanoparticles
- Effects of electron-phonon interaction on thermal and electrical transport through molecular nano-conductors
- Thermoelectric Transport in Graphene/-BN/Graphene Heterostructures: A Computational Study
- Enhanced thermoelectric figure of merit in vertical graphene junctions
- Phonon transport in single-layer Boron nanoribbons
- Thermal engineering in low-dimensional quantum devices: a tutorial review of nonequilibrium Green's function methods
- First-principles study of the thermoelectric properties of strained graphene nanoribbons
- Coulomb drag and counterflow Seebeck coefficient in bilayer-graphene double layers
- The reltation between the electronic structure and thermoelectric transport properties for Zintl compounds M2Zn5As4 (M=K, Rb)
- Vacancy tuned thermoelectric properties and high spin filtering performance in graphene/silicene heterostructures
- Pure spin current and negative differential electric resistance in hybrid systems
- Thermal boundary conductance and phonon transmission in hexagonal boron nitride/graphene heterostructures
- Phonon-Driven Electron Scattering and Magnetothermoelectric Effect in Two-Dimensional Tin Selenide
- Flexible thermoelectrics in crossed graphene/hBN composites
- Molecular dynamics of halogenated graphene - hexagonal boron nitride nanoribbons
- Calculations of point defects in the layered MX2 (M=Mo, W; X=S, Te): Substitution by the groups III, V and VII elements