Modeling and simulation of a nanoscale optical computing system

dc.contributor.author

Pang, J

dc.contributor.author

Lebeck, AR

dc.contributor.author

Dwyer, C

dc.date.accessioned

2015-07-13T14:16:12Z

dc.date.issued

2014-01-01

dc.description.abstract

Optical nanoscale computing is one promising alternative to the CMOS process. In this paper we explore the application of Resonance Energy Transfer (RET) logic to common digital circuits. We propose an Optical Logic Element (OLE) as a basic unit from which larger systems can be built. An OLE is a layered structure that works similar to a lookup table but instead uses wavelength division multiplexing for its inputs and output. Waveguides provide a convenient mechanism to connect multiple OLEs into large circuits. We build a SPICE model from first principles for each component to estimate the timing and power behavior of the OLE system. We analyze various logic circuits and the simulation results show that the components are theoretically correct and that the models faithfully reproduce the fundamental phenomena; the power-delay product of OLE systems is at least 2.5× less than the 14 nm CMOS technology with 100× better density. © 2013 Elsevier Inc. All rights reserved.

dc.identifier.issn

0743-7315

dc.identifier.uri

https://hdl.handle.net/10161/10280

dc.publisher

Elsevier BV

dc.relation.ispartof

Journal of Parallel and Distributed Computing

dc.relation.isversionof

10.1016/j.jpdc.2013.07.006

dc.title

Modeling and simulation of a nanoscale optical computing system

dc.type

Journal article

pubs.begin-page

2470

pubs.end-page

2483

pubs.issue

6

pubs.organisational-group

Computer Science

pubs.organisational-group

Duke

pubs.organisational-group

Electrical and Computer Engineering

pubs.organisational-group

Pratt School of Engineering

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.publication-status

Published

pubs.volume

74

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