International audienceWe show that porous alloys can display thermal conductivity reductions at considerably larger pore sizes than nonalloyed porous materials of the same nominal porosity. The thermal conductivity of Si0.5Ge0.5 alloy with 0.1 porosity becomes half the nonporous value at 1000 nm pore sizes, whereas pores smaller than 100 nm are required to achieve the same relative reduction in pure Si or Ge. Using Monte Carlo simulations, we also show that previous models had overestimated the thermal conductivity in the small pore limit. Our results imply that nanoporous alloys should be advantageous with respect to nanoporous nonalloys, for applications requiring a low thermal conductivity, such as novel thermoelectrics
Within a materials-by-design paradigm we make use of large-scale atomistic simulations to tailor th...
By means of atomistic simulations we study how thermal transport is affected by several ch...
In order to assess the potential of porous Si as thermoelectric material we have performed thermal c...
International audienceWe show that porous alloys can display thermal conductivity reductions at cons...
This dissertation presents a theoretical study of heat transport in nanoporous composites andin nano...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
Thermoelectric materials have gained a considerable amount of attention as a practical power source ...
ABSTRACT Although the thermal conductivity of nanoporous materials has been investigated in the past...
The reduction in lattice thermal conductivity (LTC) of porous materials is investigated in “gray med...
In recent years, nanoporous Si films have been widely studied for thermoelectric applications due to...
This study establishes that the effective thermal conductivity k eff of crystalline nanopo...
We computed thermoelectric properties of nanoporous Ge (np-Ge) with aligned pores along the [001] di...
International audienceWith the rapid development of materials’ elaboration techniques, one can produ...
International audienceThe thermal conductivity of nano-porous Silicon with amorphous shells around t...
Within a materials-by-design paradigm we make use of large-scale atomistic simulations to tailor th...
By means of atomistic simulations we study how thermal transport is affected by several ch...
In order to assess the potential of porous Si as thermoelectric material we have performed thermal c...
International audienceWe show that porous alloys can display thermal conductivity reductions at cons...
This dissertation presents a theoretical study of heat transport in nanoporous composites andin nano...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
Engineering materials to include nanoscale porosity or other nanoscale structures has become a well-...
Thermoelectric materials have gained a considerable amount of attention as a practical power source ...
ABSTRACT Although the thermal conductivity of nanoporous materials has been investigated in the past...
The reduction in lattice thermal conductivity (LTC) of porous materials is investigated in “gray med...
In recent years, nanoporous Si films have been widely studied for thermoelectric applications due to...
This study establishes that the effective thermal conductivity k eff of crystalline nanopo...
We computed thermoelectric properties of nanoporous Ge (np-Ge) with aligned pores along the [001] di...
International audienceWith the rapid development of materials’ elaboration techniques, one can produ...
International audienceThe thermal conductivity of nano-porous Silicon with amorphous shells around t...
Within a materials-by-design paradigm we make use of large-scale atomistic simulations to tailor th...
By means of atomistic simulations we study how thermal transport is affected by several ch...
In order to assess the potential of porous Si as thermoelectric material we have performed thermal c...