According to Fourier's law, a temperature difference across a material results in a linear temperature profile and a thermal conductance that decreases inversely proportional to the system length. These are the hallmarks of diffusive heat flow. Here, we report heat flow in ultrathin (25 nm) GaP nanowires in the absence of a temperature gradient within the wire and find that the heat conductance is independent of wire length. These observations deviate from Fourier's law and are direct proof of ballistic heat flow, persisting for wire lengths up to at least 15 μm at room temperature. When doubling the wire diameter, a remarkably sudden transition to diffusive heat flow is observed. The ballistic heat flow in the ultrathin wires can be modele...
Thermal conductivity measurements over variable lengths on nanostructures such as nanowires provide ...
We present an analytical model and molecular-dynamics simulations of the phonon heat transport in na...
Emerging quantum technologies require mastering thermal management, especially at the nanoscale. It ...
According to Fourier's law, a temperature difference across a material results in a linear temperatu...
According to Fourier's law, a temperature difference across a material results in a linear temperatu...
The diameter dependence of the thermal conductivity of nanowires is usually modeled using Matthiesse...
Thermal transport through various nanowires has attracted extensive attention in the past two decade...
We studied the phononic heat transfer through an atomic dielectric wire with both infinite and finit...
Heat conduction is an important energy transport process in nature. Phonon is the major energy carri...
The diameter dependence of the thermal conductivity of nanowires is usually modeled using Matthiesse...
Future of silicon-based microelectronics depends on solving the heat dissipation problem. A solution...
Heat conduction is an important energy transport process in nature. Phonon is the major en...
The context of this PhD is the reduction of sizes involved in material development and the confineme...
Thermal transport properties of amorphous materials at low temperatures are governed by the interact...
To understand the mechanisms of the heat transport at small length scales, we are fabricating comple...
Thermal conductivity measurements over variable lengths on nanostructures such as nanowires provide ...
We present an analytical model and molecular-dynamics simulations of the phonon heat transport in na...
Emerging quantum technologies require mastering thermal management, especially at the nanoscale. It ...
According to Fourier's law, a temperature difference across a material results in a linear temperatu...
According to Fourier's law, a temperature difference across a material results in a linear temperatu...
The diameter dependence of the thermal conductivity of nanowires is usually modeled using Matthiesse...
Thermal transport through various nanowires has attracted extensive attention in the past two decade...
We studied the phononic heat transfer through an atomic dielectric wire with both infinite and finit...
Heat conduction is an important energy transport process in nature. Phonon is the major energy carri...
The diameter dependence of the thermal conductivity of nanowires is usually modeled using Matthiesse...
Future of silicon-based microelectronics depends on solving the heat dissipation problem. A solution...
Heat conduction is an important energy transport process in nature. Phonon is the major en...
The context of this PhD is the reduction of sizes involved in material development and the confineme...
Thermal transport properties of amorphous materials at low temperatures are governed by the interact...
To understand the mechanisms of the heat transport at small length scales, we are fabricating comple...
Thermal conductivity measurements over variable lengths on nanostructures such as nanowires provide ...
We present an analytical model and molecular-dynamics simulations of the phonon heat transport in na...
Emerging quantum technologies require mastering thermal management, especially at the nanoscale. It ...