Ultracompact all-optical full-adder and half-adder based on nonlinear plasmonic nanocavities

48Citations
Citations of this article
19Readers
Mendeley users who have this article in their library.

Abstract

Ultracompact chip-integrated all-optical half- A nd full-adders are realized based on signal-light induced plasmonic-nanocavity-modes shift in a planar plasmonic microstructure covered with a nonlinear nanocomposite layer, which can be directly integrated into plasmonic circuits. Tremendous nonlinear enhancement is obtained for the nanocomposite cover layer, attributed to resonant excitation, slow light effect, as well as field enhancement effect provided by the plasmonic nanocavity. The feature size of the device is <15 μm, which is reduced by three orders of magnitude compared with previous reports. The operating threshold power is determined to be 300 μW (corresponding to a threshold intensity of 7.8 MW/cm2), which is reduced by two orders of magnitude compared with previous reports. The intensity contrast ratio between two output logic states, "1" and "0," is larger than 27 dB, which is among the highest values reported to date. Our work is the first to experimentally realize on-chip half- A nd full-adders based on nonlinear plasmonic nanocavities having an ultrasmall feature size, ultralow threshold power, and high intensity contrast ratio simultaneously. This work not only provides a platform for the study of nonlinear optics, but also paves a way to realize ultrahigh-speed signal computing chips.

Cite

CITATION STYLE

APA

Xie, J., Niu, X., Hu, X., Wang, F., Chai, Z., Yang, H., & Gong, Q. (2017). Ultracompact all-optical full-adder and half-adder based on nonlinear plasmonic nanocavities. Nanophotonics, 6(5), 1161–1173. https://doi.org/10.1515/nanoph-2017-0035

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free