Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5432416 | Carbon | 2017 | 6 Pages |
The two-dimensional graphene-like carbon allotrope, graphyne, has been recently fabricated and exhibits many interesting electronic properties. In this work, we investigate the thermoelectric properties of γ-graphyne by performing first-principles calculations combined with Boltzmann transport theory for both electron and phonon. The carrier relaxation time is accurately evaluated from the ultra-dense electron-phonon coupling matrix elements calculated by adopting the density functional perturbation theory and Wannier interpolation, rather than the generally used deformation potential theory which only considers the electron-acoustic phonon scattering. It is found that the thermoelectric performance of γ-graphyne exhibits a strong dependence on the temperature and carrier type. At an intermediate temperature of 600 K, a maximum ZT value of 0.77 can be achieved for the n-type system and can be further enhanced to 1.4 by considering isotopic effect.
Graphical abstractThe thermoelectric properties of γ-graphyne are accurately predicted by performing first-principles calculations combined with Boltzmann transport theory for both electron and phonon.Download high-res image (270KB)Download full-size image