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Frequency-domain ultrafast passive logic: NOT and XNOR gates

Authors :
Reza Maram
Pengyu Guan
James van Howe
Michael Galili
José Azaña
Roberto Morandotti
Leif Katsuo Oxenløwe
Francesco Da Ros
Deming Kong
Source :
Nature Communications, Vol 11, Iss 1, Pp 1-8 (2020), Nature Communications, Maram, R, Howe, J V, Kong, D, Da Ros, F, Guan, P, Galili, M, Morandotti, R, Oxenløwe, L K & Azaña, J 2020, ' Frequency-domain ultrafast passive logic: NOT and XNOR gates ', Nature Communications, vol. 11, no. 1, 5839 . https://doi.org/10.1038/s41467-020-19544-9
Publication Year :
2020
Publisher :
Nature Portfolio, 2020.

Abstract

Electronic Boolean logic gates, the foundation of current computation and digital information processing, are reaching final limits in processing power. The primary obstacle is energy consumption which becomes impractically large, > 0.1 fJ/bit per gate, for signal speeds just over several GHz. Unfortunately, current solutions offer either high-speed operation or low-energy consumption. We propose a design for Boolean logic that can achieve both simultaneously (high speed and low consumption), here demonstrated for NOT and XNOR gates. Our method works by passively modifying the phase relationships among the different frequencies of an input data signal to redistribute its energy into the desired logical output pattern. We experimentally demonstrate a passive NOT gate with an energy dissipation of ~1 fJ/bit at 640 Gb/s and use it as a building block for an XNOR gate. This approach is applicable to any system that can propagate coherent waves, such as electromagnetic, acoustic, plasmonic, mechanical, or quantum.<br />Typically, Boolean logic gates have to compromise between high speed and low energy consumption which can become limiting at scale. Here, the authors demonstrate architectures for NOT and XNOR gates that enable simultaneous low power and fast operation.

Details

Language :
English
ISSN :
20411723
Volume :
11
Issue :
1
Database :
OpenAIRE
Journal :
Nature Communications
Accession number :
edsair.doi.dedup.....57dffe30858bee980b9c5f46b34eb28a
Full Text :
https://doi.org/10.1038/s41467-020-19544-9