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Increasing the density of passive photonic-integrated circuits via nanophotonic cloaking.


ABSTRACT: Photonic-integrated devices need to be adequately spaced apart to prevent signal cross-talk. This fundamentally limits their packing density. Here we report the use of nanophotonic cloaking to render neighbouring devices invisible to one another, which allows them to be placed closer together than is otherwise feasible. Specifically, we experimentally demonstrated waveguides that are spaced by a distance of ??0/2 and designed waveguides with centre-to-centre spacing as small as 600?nm (0/2.5). Our experiments show a transmission efficiency >-2?dB and an extinction ratio >15?dB over a bandwidth larger than 60?nm. This performance can be improved with better design algorithms and industry-standard lithography. The nanophotonic cloak relies on multiple guided-mode resonances, which render such devices very robust to fabrication errors. Our devices are broadly complimentary-metal-oxide-semiconductor compatible, have a minimum pitch of 200?nm and can be fabricated with a single lithography step. The nanophotonic cloaks can be generally applied to all passive integrated photonics.

SUBMITTER: Shen B 

PROVIDER: S-EPMC5105174 | biostudies-literature | 2016 Nov

REPOSITORIES: biostudies-literature

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Increasing the density of passive photonic-integrated circuits via nanophotonic cloaking.

Shen Bing B   Polson Randy R   Menon Rajesh R  

Nature communications 20161109


Photonic-integrated devices need to be adequately spaced apart to prevent signal cross-talk. This fundamentally limits their packing density. Here we report the use of nanophotonic cloaking to render neighbouring devices invisible to one another, which allows them to be placed closer together than is otherwise feasible. Specifically, we experimentally demonstrated waveguides that are spaced by a distance of ∼λ<sub>0</sub>/2 and designed waveguides with centre-to-centre spacing as small as 600 nm  ...[more]

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