Deterministic coupling of a quantum emitter to surface plasmon polaritons, Purcell enhanced generation of indistinguishable single photons and quantum information processing
Lakshminarayan Sharma, Laxmi Narayan Tripathi

TL;DR
This paper demonstrates efficient coupling of quantum emitters to plasmonic waveguides, enhancing single-photon properties and proposing scalable quantum circuits for on-chip quantum information processing.
Contribution
It provides detailed analysis and simulation of coupling efficiency, propagation, and Purcell enhancement in plasmonic waveguides, and proposes a scalable quantum logic circuit design.
Findings
Coupling efficiency exceeds 82%.
Maximum propagation length is 3.98 μm for specific dielectric width.
Purcell factor reaches up to 31974 for 1 nm dielectric width.
Abstract
Integrated photonic circuits are an integral part of all-optical and on-chip quantum information processing and quantum computer. Deterministically integrated single-photon sources in nanoplasmonic circuits lead to densely packed scalable quantum logic circuits operating beyond the diffraction limit. Here, we report the coupling efficiency of single-photon sources to the plasmonic waveguide, characteristic transmission spectrum, propagation length, decay length, and plasmonic Purcell factor. We simulated the transmission spectrum to find the appropriate wavelength for various width of the dielectric in the metal-dielectric-metal waveguide. We find the maximum propagation length of 3.98 m for AlO dielectric-width equal to 140 nm and coupling efficiency to be greater than 82 \%. The plasmonic Purcell factor was found to be inversely proportional to dielectric-width (w),…
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