DocumentCode :
1556335
Title :
Majority Voter Full Characterization for Nanomagnet Logic Circuits
Author :
Vacca, Marco ; Graziano, Mariagrazia ; Zam, Maurizio
Author_Institution :
Electron. & Telecommun. Dept., Politec. di Torino, Turin, Italy
Volume :
11
Issue :
5
fYear :
2012
Firstpage :
940
Lastpage :
947
Abstract :
The recently proposed Nanomagnet-based logic (NML) represents an innovative way to assemble electronic logic circuits. The low power consumption, combined with the possibility of maintaining the information stored without power supply, allows us to design low power digital circuits far beyond the limitations of CMOS technology. This paper is focused on the key logic block of NML, the majority voter (MV). It is thoroughly analyzed through detailed micromagnetic simulations, changing the geometrical parameters, and detecting logic behavior, timing performance, and energy dissipation. Our analysis enables us to derive important results, substantially enhancing the practical knowledge of NML. First, we demonstrate that NML circuits can be effectively fabricated not only using electron beam lithography, but also using high-end optical lithography without loosing performance. This is a promising opportunity for the future of this technology. Second, we demonstrate the robustness of the MV considering process variations and extracting useful guidelines for its technological implementation. Third, we show how, and how much, the alteration of magnets sizes and distances affect timing and energy consumption. Finally, fourth, we outline the problematic fabrication of the gate with real clock wires, and propose a modification that enables the fabrication of working gates, remarkably enhancing the possibilities of this technology.
Keywords :
CMOS logic circuits; clocks; geometry; integrated circuit design; logic design; logic gates; logic simulation; low-power electronics; majority logic; nanoelectronics; nanomagnetics; timing circuits; CMOS technology; MV; NML circuit; clock wire; electron beam lithography; electronic logic circuit assemble; energy consumption; energy dissipation; gate fabrication; geometrical parameter; high-end optical lithography; logic behavior detection; logic block; low power digital circuit design; magnet size; majority voter full characterization; micromagnetic simulation; nanomagnet logic circuit; power consumption; process variation; timing performance; Clocks; Logic gates; Magnetic circuits; Magnetic noise; Magnetic shielding; Magnetic switching; Switches; Micromagnetic simulation; nanomagnetic circuits; process variations; quantum dot cellular automata;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2012.2207965
Filename :
6237531
Link To Document :
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