Title :
Impact of Body-Thickness-Dependent Band Structure on Scaling of Double-Gate MOSFETs: A DFT/NEGF Study
Author :
Martinez, Antonio ; Kalna, Karol ; Sushko, Peter V. ; Shluger, Alex L. ; Barker, John R. ; Asenov, Asen
Author_Institution :
Dept. of Electron. & Electr. Eng., Univ. of Glasgow, Glasgow
fDate :
3/1/2009 12:00:00 AM
Abstract :
First principles density functional theory has been used to calculate the 2-D band structure of Si slabs with different thicknesses. From the calculated 2-D band structure, electron longitudinal and transverse effective masses have been extracted as a function of the slab thickness. These thickness-dependent electron effective masses have then been used to simulate I D-VG characteristics of scaled, sub-10 nm double-gate (DG) MOSFETs and to compare them with the results obtained using bulk masses. The channel thickness dependence of the Si band structure starts to affect noticeably DG MOSFET performance at channel lengths below 10 nm, lowering the on-current by approximately 10, for transistors with a body thickness of 2.6 nm, and by 20, for transistors with a body thickness of 1.3 nm. On the other hand, the subthreshold swing is improved by 10, in the 6-nm-gate length DG MOSFET and by 15, in the 4-nm-gate length device. Finally, the impact of thickness-dependent effective masses has been related to the behavior of the transmission coefficients.
Keywords :
MOSFET; ab initio calculations; band structure; density functional theory; effective mass; semiconductor device models; silicon; slabs; 2D band structure; DFT-NEGF theory; ID-VG characteristics; Si; density functional theory; double-gate MOSFETs; effective masses; first principle calcualation; size 1.3 nm; size 2.6 nm; size 4 nm; size 6 nm; slab thickness-dependency; transmission coefficients; 2-D band structure; 2D bandstructure; Double gate nanoMOSFETs; Non-Equilibrium Green´s Functions; density functional theory; density functional theory (DFT); double-gate (DG) nano-MOSFETs; electron transport; nonequilibrium Green´s functions;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2008.917776