In this paper, we report a hierarchical simulation study of the electromigration (EM) problem in Cu-carbon nanotube (CNT) composite interconnects. This paper is based on the investigation of the activation energy and self-heating temperature using a multiscale electrothermal simulation framework. We first investigate the electrical and thermal properties of Cu-CNT composites, including contact resistances, using the density functional theory and reactive force field approaches, respectively. The corresponding results are employed in macroscopic electrothermal simulations taking into account the self-heating phenomenon. Our simulations show that although Cu atoms have similar activation energies in both bulk Cu and Cu-CNT composites, Cu-CNT ...
Improving the interface between copper and carbon nanotubes (CNTs) offers a straightforward strategy...
International audienceCarbon nanotubes (CNTs) present themselves as a viable material for on-and off...
Carbon nanotubes (CNTs) are known for their exceptional electrical, thermal, mechanical, optical, an...
In this paper, we report a hierarchical simulation study of the electromigration (EM) problem in Cu-...
In this paper, we report a hierarchical simulation study of the electromigration (EM) problem in Cu-...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
Carbon nanotubes (CNTs) have been a promising material for thermal management applications including...
The dramatic scaling of the integrated circuit technology leads to significant challenges for Cu int...
The electromigration (EM) properties of pure Cu and Cu/carbon nanotube (CNT) composites were studied...
Bottom-up growth of carbon nanotubes (CNTs) and electrochemical plating approaches were combined to ...
Improving only the performance and energy efficiency of transistors is not sufficient for future sys...
In this paper, we estimate the solution of the electromigration diffusion equation (EMDE) in isotopi...
In this paper, we estimate the solution of the electromigration diffusion equation (EMDE) in isotopi...
Improving the interface between copper and carbon nanotubes (CNTs) offers a straightforward strategy...
International audienceCarbon nanotubes (CNTs) present themselves as a viable material for on-and off...
Carbon nanotubes (CNTs) are known for their exceptional electrical, thermal, mechanical, optical, an...
In this paper, we report a hierarchical simulation study of the electromigration (EM) problem in Cu-...
In this paper, we report a hierarchical simulation study of the electromigration (EM) problem in Cu-...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
International audienceIn this paper, we report a hierarchical simulation study on the electromigrati...
Carbon nanotubes (CNTs) have been a promising material for thermal management applications including...
The dramatic scaling of the integrated circuit technology leads to significant challenges for Cu int...
The electromigration (EM) properties of pure Cu and Cu/carbon nanotube (CNT) composites were studied...
Bottom-up growth of carbon nanotubes (CNTs) and electrochemical plating approaches were combined to ...
Improving only the performance and energy efficiency of transistors is not sufficient for future sys...
In this paper, we estimate the solution of the electromigration diffusion equation (EMDE) in isotopi...
In this paper, we estimate the solution of the electromigration diffusion equation (EMDE) in isotopi...
Improving the interface between copper and carbon nanotubes (CNTs) offers a straightforward strategy...
International audienceCarbon nanotubes (CNTs) present themselves as a viable material for on-and off...
Carbon nanotubes (CNTs) are known for their exceptional electrical, thermal, mechanical, optical, an...