Title :
Impurity potential induced resonances in doped Si nanowire: A NEGF approach
Author :
Martinez, Antonio ; Kalna, Karol ; Asenov, Asen
Author_Institution :
Dept. of Electron. & Electr. Eng., Univ. of Glasgow, Glasgow, UK
Abstract :
We study the coherent transport of electrons through a uniformly doped Silicon quantum wire in the presence of one impurity in the channel at room temperature using fully 3D Non-Equilibrium Green´s Functions technique. The potential of the single impurity, assumed to be attractive (a donor), is self-consistently calculated via Poisson equation coupled with Schro¿dinger equation in the effective mass approximation. The electron effective masses are re-normalised for the confinement. The effects of the screening on the donor and of the polarization at the Si/SiO2 interface are included in a non-perturbative way (in the Hartree´s approximation). The transmission shows different types of resonances (Breit-Wigner and Fano types) from the quasi-bound states of the impurity when compared to the impurity free wire. We found that the type of resonance is a direct consequence of the shape of the self-consistent potential. The study has significant relevance to mesoscopic wires and nanowire transistors with cross sections of few nanometers where the electron wavelength and confinement play an important role.
Keywords :
Green´s function methods; effective mass; electron transport theory; elemental semiconductors; impurities; impurity states; nanowires; semiconductor doping; semiconductor quantum wires; silicon; 3D nonequilibrium Green´s functions technique; Breit-Wigner resonance; Fano type resonance; NEGF approach; Poisson equation; Schrodinger equation; Si; coherent electron transport; doped Si nanowire; effective mass approximation; electron effective masses; impurity potential induced resonances; mesoscopic wires; nanowire transistors; quasi-bound states; silicon quantum wire; Couplings; Effective mass; Electrons; Green´s function methods; Impurities; Poisson equations; Resonance; Silicon; Temperature; Wire; Dopants; Non-Equilibrium Green´s Functions; Resonances; Si Nanowire; Transmission;
Conference_Titel :
Nanotechnology, 2009. IEEE-NANO 2009. 9th IEEE Conference on
Conference_Location :
Genoa
Print_ISBN :
978-1-4244-4832-6
Electronic_ISBN :
1944-9399