Ultrafast X-ray diffraction is used to quantify the transport of energy in laser-excited nanoscale gold–nickel (Au–Ni) bilayers. Electron transport and efficient electron–phonon coupling in Ni convert the laser-deposited energy in the conduction electrons within a few picoseconds into a strong non-equilibrium between hot Ni and cold Au phonons at the bilayer interface. Modeling of the subsequent equilibration dynamics within various two-temperature models confirms that for ultrathin Au films, the thermal transport is dominated by phonons instead of conduction electrons because of the weak electron–phonon coupling in Au
Nanoscale heat transport has become a crucial research topic due to the growing importance of nanote...
In the present work, we present a theoretical study aiming at understanding ultra-fast generation, e...
We present here a theoretical method to determine the phononic contribution to the thermal conductan...
Ultrafast X-ray diffraction is used to quantify the transport of energy in laser-excited nanoscale g...
Ultrafast heat transport in nanoscale metal multilayers is of great interest in the context of optic...
Ultrafast heat transport in nanoscale metal multilayers is of great interest in the context of opti...
An experimental scheme (double pump/reflectivity probe using femtosecond laser pulses) enables the i...
The goal of this work is to understand spin and heat transfer in metal multilayer systems on nanosca...
Ultrafast laser measurements probe the nonequilibrium dynamics of excited electrons in metals with i...
Nous présentons un travail théorique en forte adéquation avec des résultats d’expériences qui a pour...
We adapt existing phonon heat transport methods to compute the phononic thermal conductance of metal...
Energy transport at the nanoscale involves different types of carriers - phonon, electron and photon...
By irradiating a thin metal foil with an intense short-pulse laser, we have created a uniform system...
We study the ultrafast structural dynamics, in response to electronic excitations, in heterostructur...
Heat transfer across metal-dielectric interfaces involves transport of electrons and phonons accompl...
Nanoscale heat transport has become a crucial research topic due to the growing importance of nanote...
In the present work, we present a theoretical study aiming at understanding ultra-fast generation, e...
We present here a theoretical method to determine the phononic contribution to the thermal conductan...
Ultrafast X-ray diffraction is used to quantify the transport of energy in laser-excited nanoscale g...
Ultrafast heat transport in nanoscale metal multilayers is of great interest in the context of optic...
Ultrafast heat transport in nanoscale metal multilayers is of great interest in the context of opti...
An experimental scheme (double pump/reflectivity probe using femtosecond laser pulses) enables the i...
The goal of this work is to understand spin and heat transfer in metal multilayer systems on nanosca...
Ultrafast laser measurements probe the nonequilibrium dynamics of excited electrons in metals with i...
Nous présentons un travail théorique en forte adéquation avec des résultats d’expériences qui a pour...
We adapt existing phonon heat transport methods to compute the phononic thermal conductance of metal...
Energy transport at the nanoscale involves different types of carriers - phonon, electron and photon...
By irradiating a thin metal foil with an intense short-pulse laser, we have created a uniform system...
We study the ultrafast structural dynamics, in response to electronic excitations, in heterostructur...
Heat transfer across metal-dielectric interfaces involves transport of electrons and phonons accompl...
Nanoscale heat transport has become a crucial research topic due to the growing importance of nanote...
In the present work, we present a theoretical study aiming at understanding ultra-fast generation, e...
We present here a theoretical method to determine the phononic contribution to the thermal conductan...