Issue 1, 2021

Non-isolated sources of electromagnetic radiation by multipole decomposition for photonic quantum technologies on a chip with nanoscale apertures

Abstract

The creation of single photon sources on a chip is a mid-term milestone on the road to chip-scale quantum computing. An in-depth understanding of the extended multipole decomposition of non-isolated sources of electromagnetic radiation is not only relevant for a microscopic description of fundamental phenomena, such as light propagation in a medium, but also for emerging applications such as single-photon sources. To design single photon emitters on a chip, we consider a ridge dielectric waveguide perturbed with a cylindrical inclusion. For this, we expanded classical multipole decomposition that allows simplifying and interpreting complex optical interactions in an intuitive manner to make it suitable for analyzing light-matter interactions with non-isolated objects that are parts of a larger network, e.g. individual components such as a single photon source of an optical chip. It is shown that our formalism can be used to design single photon sources on a chip.

Graphical abstract: Non-isolated sources of electromagnetic radiation by multipole decomposition for photonic quantum technologies on a chip with nanoscale apertures

Supplementary files

Article information

Article type
Paper
Submitted
16 Jul 2020
Accepted
08 Oct 2020
First published
08 Oct 2020
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2021,3, 190-197

Non-isolated sources of electromagnetic radiation by multipole decomposition for photonic quantum technologies on a chip with nanoscale apertures

Y. A. Artemyev, V. Savinov, A. Katiyi, A. S. Shalin and A. Karabchevsky, Nanoscale Adv., 2021, 3, 190 DOI: 10.1039/D0NA00580K

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