Superlattices are of great interest as platform materials for thermoelectric technology that are capable of directly converting low-grade heat energy into useful electrical power. In this work, the thermal conductivities of GaAs/Ge superlattice nanostructures were investigated systematically in relation to their morphologies and interfaces. Thermal conductivities were measured using ultrafast time-domain thermoreflectance and were found to decrease with increasing interface densities, consistent with past understanding of microscopic phonon transport in the particle regime. The lowest thermal conductivities were observed in (GaAs)[subscript 0.77](Ge₂)[subscript 0.23] alloys, and transmission electron microscopy study reveals phase separati...
This review summarizes recent studies of thermal transport in nanoscaled semiconductors. Different f...
One significant challenge in the development of micro- and nano-electronic devices is thermal manage...
Managing heat dissipation in nanoscale electronic devices and understanding the underlying mechanism...
We present thermal conductivity measurements in short period GaAs/AlAs superlattices. The aim of thi...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
We report on the thermal conductivity measurement of Ge quantum dot superlattices, The samples used ...
We studied the cross-plane lattice and electronic thermal conductivities of superlattices made of In...
ABSTRACT: The engineering of nanostructured materials with very low thermal conductivity is a necess...
ABSTRACT We model and compare the thermal conductivity of rough semiconductor nanowires (NWs) of Si,...
In this paper, optimizations of thermoelectric(TE) properties for the rough surface of the nano-ridg...
Various theoretical and experimental methods are utilized to investigate the thermal conductivity of...
Energy transport in nanostructures differs significantly from macrostructures because of classical a...
Understanding thermal transport in nanoscale is important for developing nanostructured thermolelect...
We compute the thermal conductivity of superlattice (SL) thin films and nanowires for various SL per...
| openaire: EC/H2020/645241/EU//TransFlexTegSemiconductor nanowire heterostructures have been shown ...
This review summarizes recent studies of thermal transport in nanoscaled semiconductors. Different f...
One significant challenge in the development of micro- and nano-electronic devices is thermal manage...
Managing heat dissipation in nanoscale electronic devices and understanding the underlying mechanism...
We present thermal conductivity measurements in short period GaAs/AlAs superlattices. The aim of thi...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
We report on the thermal conductivity measurement of Ge quantum dot superlattices, The samples used ...
We studied the cross-plane lattice and electronic thermal conductivities of superlattices made of In...
ABSTRACT: The engineering of nanostructured materials with very low thermal conductivity is a necess...
ABSTRACT We model and compare the thermal conductivity of rough semiconductor nanowires (NWs) of Si,...
In this paper, optimizations of thermoelectric(TE) properties for the rough surface of the nano-ridg...
Various theoretical and experimental methods are utilized to investigate the thermal conductivity of...
Energy transport in nanostructures differs significantly from macrostructures because of classical a...
Understanding thermal transport in nanoscale is important for developing nanostructured thermolelect...
We compute the thermal conductivity of superlattice (SL) thin films and nanowires for various SL per...
| openaire: EC/H2020/645241/EU//TransFlexTegSemiconductor nanowire heterostructures have been shown ...
This review summarizes recent studies of thermal transport in nanoscaled semiconductors. Different f...
One significant challenge in the development of micro- and nano-electronic devices is thermal manage...
Managing heat dissipation in nanoscale electronic devices and understanding the underlying mechanism...