Electron-phonon scattering and thermoelectric transport in -type PbTe from first principles
arXiv:2008.10343 · doi:10.1103/PhysRevB.102.115204
Abstract
We present a first principles based model of electron-phonon scattering mechanisms and thermoelectric transport at the L and valleys in <200b>-type PbTe, accounting for their thermally induced shifts. Our calculated values of all thermoelectric transport parameters at room temperature are in very good agreement with experiments for a wide range of doping concentrations. Scattering due to longitudinal optical phonons is the main scattering mechanism in -type PbTe, while scattering due to transverse optical modes is the weakest. The L valleys contribute most to thermoelectric transport at 300 K due to the sizeable energy difference between the L and valleys. We show that both scattering between the L and valleys and additional transport channels of the valleys are beneficial for the overall thermoelectric performance of -type PbTe at 300 K. Our findings thus support the idea that materials with high valley degeneracy may be good thermoelectrics.
16 pages, 6 figures
References in corpus (8)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Giant Anharmonic Phonon Scattering in PbTe
- Ab initio Electron Mobility and Polar Phonon Scattering in GaAs
- First-Principles Simulation of Electron Mean-Free-Path Spectra and Thermoelectric Properties in Silicon
- Phonon-limited resistivity of graphene by first-principle calculations: electron-phonon interactions, strain-induced gauge field and Boltzmann equation
- Anharmonic phonon spectra of PbTe and SnTe in the self-consistent harmonic approximation
- Broadband Phonon Scattering in PbTe-based Materials Driven Near the Ferroelectric Phase Transition by Strain or Alloying
Cited by in corpus (13)
- First-principles predictions of Hall and drift mobilities in semiconductors
- When Band Convergence is Not Beneficial for Thermoelectrics
- Magnetic Control of Soft Chiral Phonons in PbTe
- Deformation potential extraction and computationally efficient mobility calculations in silicon from first principles
- Chiral Phonons with Giant Magnetic Moments in a Topological Crystalline Insulator
- Long-range electrostatic contribution to the electron-phonon couplings and mobilities of two-dimensional and bulk materials
- Materials design criteria for ultra-high thermoelectric power factors in metals
- Wannier Function Perturbation Theory: Localized Representation and Interpolation of Wavefunction Perturbation
- Temperature induced band convergence, intervalley scattering and thermoelectric transport in p-type PbTe
- Electron-phonon coupling and electronic thermoelectric properties of n-type PbTe driven near the soft-mode phase transition via lattice expansion
- Experimental verification of band convergence in Sr and Na codoped PbTe
- Electronic transport computation in thermoelectric materials: From ab initio scattering rates to nanostructures
- Generalized deformation potential and machine-learning approaches for electron-phonon coupling and thermoelectric transport in semiconductors