As the active dimensions of metal-oxide field-effect transistors are approaching the atomic scale, the electronic properties of these “nanowire” devices must be treated on a quantum mechanical level. In this paper, the transmission coefficients and the density of states of biased and unbiased Si and GaAs nanowires are simulated using the sp3d5s* empirical tight-binding method. Each atom, as well as the connections to its nearest neighbors, is represented explicitly. The material parameters are optimized to reproduce bulk band-structure characteristics in various crystal directions and various strain conditions. A scattering boundary method to calculate the open boundary conditions in nanowire transistors is developed to reduce the computati...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
As device sizes shrink towards the nanoscale, CMOS development investigates alternative structures a...
As the active dimensions of metal-oxide field-effect transistors are approaching the atomic scale, t...
Semiconductor nanowires may be the core components of next generation processors and memories. In ef...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
Semiconductor nanowires are possible candidates to replace the metal-oxide-semiconductor field-effec...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
As device sizes shrink towards the nanoscale, CMOS development investigates alternative structures a...
Semiconductor nanowires are possible candidates to replace the metal-oxide-semiconductor field-effec...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
As device sizes shrink towards the nanoscale, CMOS development investigates alternative structures a...
As the active dimensions of metal-oxide field-effect transistors are approaching the atomic scale, t...
Semiconductor nanowires may be the core components of next generation processors and memories. In ef...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
Semiconductor nanowires are possible candidates to replace the metal-oxide-semiconductor field-effec...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
An atomistic full-band quantum transport simulator has been developed to study three-dimensional Si ...
As device sizes shrink towards the nanoscale, CMOS development investigates alternative structures a...
Semiconductor nanowires are possible candidates to replace the metal-oxide-semiconductor field-effec...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
The ballistic performance of electron transport in nanowire transistors is examined using a 10 orbit...
As device sizes shrink towards the nanoscale, CMOS development investigates alternative structures a...