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Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators

Tian Yonghui et al · Wiley · 2018

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Currently, the reversible logic circuit is a popular research topic in the field of information processing as it is a most effective approach to minimize power consumption, which can achieve the one-to-one mapping function to identify the input signals from its corresponding output signals. In this letter, we propose and experimentally demonstrate an optical Feynman gate for reversible logic operation using silicon micro-ring resonators (MRRs). Two electrical input signals (logic operands) are applied across the micro-heaters above MRRs to determine the switching states of MRRs, and the reversible logic operation results are directed to the output ports in the form of light, respectively. For proof of concept, the thermo-optic modulation scheme is used to achieve MRR’s optical switching function. At last, a Feynman gate for reversible logic operation with the speed of 10 kbps is demonstrated successfully.

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APA 7

al, T. Y. E. (2018). Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators. https://doi.org/10.1515/nanoph-2017-0071

MLA

al, Tian Yonghui et. "Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators." 2018. https://doi.org/10.1515/nanoph-2017-0071.

Chicago

al, Tian Yonghui et. 2018. "Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators.". https://doi.org/10.1515/nanoph-2017-0071.

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al, T. Y. E. 2018, Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators, Wiley, available at: https://doi.org/10.1515/nanoph-2017-0071 [Accessed 8 Aug. 2026].

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Title
Experimental demonstration of an optical Feynman gate for reversible logic operation using silicon micro-ring resonators
Author / contributors
Tian Yonghui et al
Publisher
Wiley
Publication year
2018
ISSN
2192-8606
ISSN
2192-8606
Language
English

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