DocumentCode :
511911
Title :
HSPICE implementation of a numerically efficient model of CNT transistor
Author :
Kazmierski, Tom J. ; Zhou, Defeng ; Al-Hashimi, Bashir M.
Author_Institution :
Sch. of Electron. & Comput. Sci., Univ. of Southampton, Southampton, UK
fYear :
2009
fDate :
22-24 Sept. 2009
Firstpage :
1
Lastpage :
5
Abstract :
This paper presents the algorithms of an implementation of a numerically efficient carbon nanotube transistor (CNT) model in HSPICE. The model is derived from cubic spline non-linear approximation of the non-equilibrium mobile charge density. The spline algorithm exploits a rapid and accurate solution of the numerical relationship between the charge density and the self-consistent voltage, which results in the acceleration of deriving the current through the channel without losing much accuracy. The output I-V characteristics of the proposed model have been compared with those of a recent HSPICE implementation of the Stanford CNT model and published experimental I-V curves. The results show superior accuracy of the proposed model while maintaining similar CPU time performance. Two versions of the HSPICE macromodel implementation have been developed and validated, one to reflect ballistic transport only and another with non-ballistic effects. To further validate the model a complementary logic inverter has also been implemented using the proposed technique and simulated in HSPICE.
Keywords :
SPICE; carbon nanotubes; splines (mathematics); transistors; CNT transistor; HSPICE implementation; carbon nanotube transistor; cubic spline nonlinear approximation; nonequilibrium mobile charge density; spline algorithm; Acceleration; Carbon nanotubes; Integrated circuit modeling; Nanoscale devices; Neodymium; Numerical models; SPICE; Spline; Transistors; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Specification & Design Languages, 2009. FDL 2009. Forum on
Conference_Location :
Sophia Antipolis
ISSN :
1636-9874
Electronic_ISBN :
1636-9874
Type :
conf
Filename :
5404051
Link To Document :
بازگشت