DocumentCode
3579059
Title
Ultra low power full adder circuit using carbon nanotube field effect transistor
Author
Kumar, Koushik ; Sahithi, Chittineni ; Sahoo, Rasmita ; Sahoo, Subhendu Kumar
Author_Institution
Dept. of Electr. & Electron. Eng, BITS Pilani, Hyderabad, India
fYear
2014
Firstpage
1
Lastpage
4
Abstract
After the invention of the MOSFET, continuous scaling of the device is going on as predicted by Moore in 1970. This reduction in device size is giving higher performance in terms of increased speed, lower power consumption at lower cost with greater chip density. At the same time, because of the scaling, the channel length is decreasing continuously leading to short-channel effects (SCE) in nanoscale regime. To overcome these limitations many alternate devices are proposed. Among these various alternative devices, carbon nanotube field effect transistor (CNTFET) is found to be one of the most promising alternatives for MOSFET. The CNTFET is a field effect transistor in which a carbon nanotube (CNT) is used in the channel region. In this paper we have used CNTFETs for designing a 10 transistor adder circuit, from which power, delay and power delay products are calculated. We have then calculated all these performance parameters for CMOS logic and compared the results with that obtained for CNTFET logic. The comparison shows circuits using CNTFET consumes almost 80 percent less power compared to its CMOS counterpart and hence advantageous over CMOS design.
Keywords
CMOS logic circuits; MOSFET; adders; carbon nanotubes; field effect transistors; logic design; low-power electronics; CMOS logic; CNTFET; MOSFET; Moore; carbon nanotube field effect transistor; power delay products; short-channel effects; transistor adder circuit; ultra low power full adder circuit; Adders; CMOS integrated circuits; CNTFETs; Delays; Semiconductor device modeling; Simulation; Adder; CMOS; CNTFET; Low power;
fLanguage
English
Publisher
ieee
Conference_Titel
Power, Control and Embedded Systems (ICPCES), 2014 International Conference on
Print_ISBN
978-1-4799-5910-5
Type
conf
DOI
10.1109/ICPCES.2014.7062796
Filename
7062796
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