© 2018 ACM. As the conventional silicon-based CMOS technology marches toward the sub-10nm region, the problem of high power density becomes increasingly serious. Under this circumstance, the carbon-nanotube field effect transistors (CNFETs) emerge as a promising alternative to the conventional silicon-based CMOS devices. However, they experience a much larger variation than the silicon-based CMOS devices, which results in a large circuit delay variation and hence, a significant timing yield loss. One of the main variation sources is the carbon-nanotube (CNT) density variation. However, it shows a special property not existing for silicon-based CMOS devices, namely the asymmetric spatial correlation. In this work, we propose novel global pla...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...
The Carbon Nanotube Field Effect Transistor (CNFET) is one of the most promising candidates to becom...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...
© 2015 IEEE. Carbon nanotube field effect transistors (CNFETs), which use carbon nanotubes (CNTs) as...
Carbon Nanotubes (CNTs) are grown using chemical self-assembly. As a result, it is extremely difficu...
Due to limited controllability over the tube growth process, Carbon Nanotube Field-Effect Transistor...
Carbon Nano-Tube Field Effect Transistors (CNFETs) offer promising solutions beyond conventional CMO...
Various emerging technologies have shown great potential of supplementing silicon transistors as Moo...
Correlation of carbon nanotube FETs (CNFETs) due to aligned CNT growth was shown to improve function...
Carbon nanotube field-effect transistor (CNFET) is one of the promising candidates as extensions to ...
Carbon Nanotubes (CNTs) are grown using chemical synthesis, and the exact positioning and chirality ...
Carbon nanotube field-effect transistors (CNFETs) show great potential to build digital systems on a...
The carbon nanotube field-effect transistor (CNFET) is a potential candidate to replace MOSFET due t...
This work is concerned with Carbon Nanotube diameter variations and the resulting uncertainties on t...
Carbon Nanotubes (CNTs) are grown using chemical synthesis, and the exact positioning and chirality ...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...
The Carbon Nanotube Field Effect Transistor (CNFET) is one of the most promising candidates to becom...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...
© 2015 IEEE. Carbon nanotube field effect transistors (CNFETs), which use carbon nanotubes (CNTs) as...
Carbon Nanotubes (CNTs) are grown using chemical self-assembly. As a result, it is extremely difficu...
Due to limited controllability over the tube growth process, Carbon Nanotube Field-Effect Transistor...
Carbon Nano-Tube Field Effect Transistors (CNFETs) offer promising solutions beyond conventional CMO...
Various emerging technologies have shown great potential of supplementing silicon transistors as Moo...
Correlation of carbon nanotube FETs (CNFETs) due to aligned CNT growth was shown to improve function...
Carbon nanotube field-effect transistor (CNFET) is one of the promising candidates as extensions to ...
Carbon Nanotubes (CNTs) are grown using chemical synthesis, and the exact positioning and chirality ...
Carbon nanotube field-effect transistors (CNFETs) show great potential to build digital systems on a...
The carbon nanotube field-effect transistor (CNFET) is a potential candidate to replace MOSFET due t...
This work is concerned with Carbon Nanotube diameter variations and the resulting uncertainties on t...
Carbon Nanotubes (CNTs) are grown using chemical synthesis, and the exact positioning and chirality ...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...
The Carbon Nanotube Field Effect Transistor (CNFET) is one of the most promising candidates to becom...
In silicon bulk CMOS technology the variability of the device parameters is a key drawback that may ...