Boundary-engineering in nanostructures has the potential to dramatically impact the development of materials for high- efficiency conversion of thermal energy directly into electricity. In particular, nanostructuring of semiconductors can lead to strong suppression of heat transport with little degradation of electrical conductivity. Although this combination of material properties is promising for thermoelectric materials, it remains largely unexplored. In this work, we introduce a novel concept, the directional phonon suppression function, to unravel boundary-dominated heat transport in unprecedented detail. Using a combination of density functional theory and the Boltzmann transport equation, we compute this quantity for nanoporous silic...
In this work we compute the effective thermal conductivity of porous Si by means of the phonon Boltz...
Abstract We introduce a methodology for density-based topology optimization of non-Fo...
When the size of semiconductors is smaller than the phonon mean free path, phonons can carry heat wi...
Tuning thermal transport in nanostructured materials is a powerful approach to develop high-efficien...
Si-based nanoporous semiconductors have attracted great attentions recently due to their prominent p...
Nanostructured materials exhibit low thermal conductivity because of the additional scattering due t...
Nanoporous materials are a promising platform for thermoelectrics in that they offer high thermal co...
Nanostructured materials exhibit low thermal conductivity because of the additional scattering due t...
The ability to minimize the thermal conductivity of dielectrics with minimal structural intervention...
The inability to remove heat efficiently is currently one of the stumbling blocks toward further min...
Thermoelectric (TE) applications serve as an important piece of puzzle in solving the emerging energ...
Nanoengineering has revolutionized the development of new thermoelectric materials in recent decades...
<p>The operating temperature of energy conversion and electronic devices affects their efficiency an...
The operating temperature of energy conversion and electronic devices affects their efficiency and e...
In this work we compute the effective thermal conductivity of porous Si by means of the phonon Boltz...
In this work we compute the effective thermal conductivity of porous Si by means of the phonon Boltz...
Abstract We introduce a methodology for density-based topology optimization of non-Fo...
When the size of semiconductors is smaller than the phonon mean free path, phonons can carry heat wi...
Tuning thermal transport in nanostructured materials is a powerful approach to develop high-efficien...
Si-based nanoporous semiconductors have attracted great attentions recently due to their prominent p...
Nanostructured materials exhibit low thermal conductivity because of the additional scattering due t...
Nanoporous materials are a promising platform for thermoelectrics in that they offer high thermal co...
Nanostructured materials exhibit low thermal conductivity because of the additional scattering due t...
The ability to minimize the thermal conductivity of dielectrics with minimal structural intervention...
The inability to remove heat efficiently is currently one of the stumbling blocks toward further min...
Thermoelectric (TE) applications serve as an important piece of puzzle in solving the emerging energ...
Nanoengineering has revolutionized the development of new thermoelectric materials in recent decades...
<p>The operating temperature of energy conversion and electronic devices affects their efficiency an...
The operating temperature of energy conversion and electronic devices affects their efficiency and e...
In this work we compute the effective thermal conductivity of porous Si by means of the phonon Boltz...
In this work we compute the effective thermal conductivity of porous Si by means of the phonon Boltz...
Abstract We introduce a methodology for density-based topology optimization of non-Fo...
When the size of semiconductors is smaller than the phonon mean free path, phonons can carry heat wi...