Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-established strategy for enhancing the thermoelectric performance of dielectrics. However, the approach is only considered beneficial for materials where the intrinsic phonon mean-free path is much longer than that of the charge carriers. As such, the approach would not be expected to provide significant performance gains in polycrystalline semiconducting alloys, such as SixGe1-x, where mass disorder and grains provide strong phonon scattering. In this manuscript, we demonstrate that the addition of nanoscale porosity to even ultrafine-grained Si0.8Ge0.2 may be worthwhile. The semiclassical Boltzmann transport equation was used to model elect...
A large thermoelectric power factor in heavily boron-doped p-type nanograined Si with grain sizes si...
The rapid increase in thermoelectric (TE) materials R&D is a consequence of the growing need to incr...
The strongly correlated thermoelectric properties have been a major hurdle for high-performance ther...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
International audienceWe show that porous alloys can display thermal conductivity reductions at cons...
Nanocomposite thermoelectric materials have attracted much attention recently due to experimental de...
By means of atomistic simulations we study how thermal transport is affected by several chemical and...
The strongly correlated thermoelectric properties have been a major hurdle for high-performance ther...
This dissertation presents a theoretical study of heat transport in nanoporous composites andin nano...
We computed thermoelectric properties of nanoporous Ge (np-Ge) with aligned pores along the [001] di...
Despite SiGe being one of the most widely studied thermoelectric materials owing to its application ...
Point defect scattering via the formation of solid solutions to reduce the lattice thermal conductiv...
Direct energy conversion from thermal to electrical energy, based on thermoelectric effects, is attr...
Grain boundaries (GBs) form ubiquitous microstructures in polycrystalline materials which play a sig...
A large thermoelectric power factor in heavily boron-doped p-type nanograined Si with grain sizes si...
The rapid increase in thermoelectric (TE) materials R&D is a consequence of the growing need to incr...
The strongly correlated thermoelectric properties have been a major hurdle for high-performance ther...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
International audienceWe show that porous alloys can display thermal conductivity reductions at cons...
Nanocomposite thermoelectric materials have attracted much attention recently due to experimental de...
By means of atomistic simulations we study how thermal transport is affected by several chemical and...
The strongly correlated thermoelectric properties have been a major hurdle for high-performance ther...
This dissertation presents a theoretical study of heat transport in nanoporous composites andin nano...
We computed thermoelectric properties of nanoporous Ge (np-Ge) with aligned pores along the [001] di...
Despite SiGe being one of the most widely studied thermoelectric materials owing to its application ...
Point defect scattering via the formation of solid solutions to reduce the lattice thermal conductiv...
Direct energy conversion from thermal to electrical energy, based on thermoelectric effects, is attr...
Grain boundaries (GBs) form ubiquitous microstructures in polycrystalline materials which play a sig...
A large thermoelectric power factor in heavily boron-doped p-type nanograined Si with grain sizes si...
The rapid increase in thermoelectric (TE) materials R&D is a consequence of the growing need to incr...
The strongly correlated thermoelectric properties have been a major hurdle for high-performance ther...