Title :
Micropipeline-Based Asynchronous Design Methodology for Robust System Design Using Nanoscale Crossbar
Author :
Chakraborty, Rajat Subhra ; Bhunia, Swarup
Author_Institution :
Case Western Reserve Univ., Cleveland
Abstract :
System design with nanoscale molecular devices will require developing new circuit and architectural techniques to exploit highly dense and regular structures such as nano-crossbar. It also requires addressing some inherent limitations with these devices, such as large process variations, high defect rates, lack of voltage gain (preventing logic cascading), and large overhead of interfacing logic. We propose an asynchronous design paradigm for nanoscale crossbar that combines them with CMOS-based event- driven bistable elements to implement micropipeline structures. An automated design platform for synthesizing these systems is also presented. The proposed asynchronous design approach addresses three main issues with nanoscale crossbar: 1) parameter variations, 2) logic cascading, and 3) large overhead of interfacing logic. Simulation results show considerable improvement in robustness under variations as well as in total area (up to 1.8X), delay (up to 2X) and power (up to 3.2X) compared to equivalent sequential implementation.
Keywords :
CMOS integrated circuits; integrated circuit design; integrated logic circuits; logic design; nanoelectronics; CMOS-based event-driven bistable elements; defect rates; interfacing logic; logic cascading; micropipeline structures; micropipeline-based asynchronous design methodology; nanoscale crossbar; nanoscale molecular devices; voltage gain; CMOS logic circuits; Design methodology; Diodes; Fabrication; Fabrics; Logic design; Logic devices; Nanoscale devices; Nanostructures; Robustness; Asynchronous design; CMOSNano; Diode-resistor logic;
Conference_Titel :
Quality Electronic Design, 2008. ISQED 2008. 9th International Symposium on
Conference_Location :
San Jose, CA
Print_ISBN :
978-0-7695-3117-5
DOI :
10.1109/ISQED.2008.4479822