Materials design criteria for ultra-high thermoelectric power factors in metals
arXiv:2501.10790 · doi:10.1103/PRXEnergy.3.043009
Abstract
Metals have high electronic conductivities, but very low Seebeck coefficients, which traditionally make them unsuitable for thermoelectric materials. Recent studies, however, showed that metals can deliver ultra-high thermoelectric power factors (PFs) under certain conditions. In this work, we theoretically examine the electronic structure and electronic transport specifications which allow for such high PFs. Using Boltzmann transport (BTE) simulations and a multi-band electronic structure model, we show that metals with: i) high degree of transport asymmetry between their bands, ii) strong inter-band scattering, and iii) a large degree of band overlap, can provide ultra-high power factors. We show that each of these characteristics adds to the steepness of the transport distribution function of the BTE, which allows for an increase of the Seebeck coefficient to sizable values, simultaneously with an increase in the electrical conductivity. This work generalizes the concept that transport asymmetry (i.e., mixture of energy regions of high and low contributions to the electrical conductivity), through a combination of different band masses, scattering strengths, or energy filtering scenarios, etc., can indeed result in very high thermoelectric power factors, even in the absence of a material bandgap. Under certain conditions, transport asymmetry can over-compensate any performance degradation to the PF due to bipolar conduction and the naturally low Seebeck coefficients that otherwise exist in this class of materials.
paper and supporting information, 50 pages
References in corpus (14)
- Low-Dimensional Transport and Large Thermoelectric Power Factors in Bulk Semiconductors by Band Engineering of Highly Directional Electronic States
- Engineering Enhanced Thermoelectric Properties in Zigzag Graphene Nanoribbons
- Band alignment and scattering considerations for enhancing the thermoelectric power factor of complex materials: The case of Co-based half-Heuslers
- Electron-phonon scattering and thermoelectric transport in -type PbTe from first principles
- Impact of the scattering physics on the power factor of complex thermoelectric materials
- Thermoelectric Band Engineering: The Role of Carrier Scattering
- Hierarchical nanostructuring approaches for thermoelectric materials with high power factors
- Antiferromagnetic phase of the gapless semiconductor V3Al
- Ultra-High Thermoelectric Power Factors in Narrow Gap Materials with Asymmetric Bands
- Bipolar conduction asymmetries lead to ultra-high thermoelectric power factor
- Low-moment ferrimagnetic phase of the Heusler compound Cr2CoAl
- The Limits of Thermoelectric Performance with a Bounded Transport Distribution
- Energy Filtering in Doping Modulated Nanoengineered Thermoelectric Materials: A Monte Carlo Simulation Approach
- The role of electronic bandstructure shape in improving the thermoelectric power factor of complex materials