Directional silicon nano-antennas for quantum emitter control designed by evolutionary optimization

Fuente: arXiv
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Autori principali: Hernandez, Romain, Wiecha, Peter R., Poumirol, Jean-Marie, Agez, Gonzague, Arbouet, Arnaud, Ressier, Laurence, Paillard, Vincent, Cuche, Aurélien
Natura: Preprint
Pubblicazione: 2023
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author Hernandez, Romain
Wiecha, Peter R.
Poumirol, Jean-Marie
Agez, Gonzague
Arbouet, Arnaud
Ressier, Laurence
Paillard, Vincent
Cuche, Aurélien
author_facet Hernandez, Romain
Wiecha, Peter R.
Poumirol, Jean-Marie
Agez, Gonzague
Arbouet, Arnaud
Ressier, Laurence
Paillard, Vincent
Cuche, Aurélien
contents We optimize silicon nano-antennas to enhance and steer the emission of local quantum sources. We combine global evolutionary optimization (EO) with frequency domain electrodynamical simulations, and compare design strategies based on resonant and non-resonant building blocks. Specifically, we investigate the performance of models with different degrees of freedom but comparable amount of available material. We find that simpler geometric models allow significantly faster convergence of the optimizer, which, expectedly, comes at the cost of a reduced optical performance. We finally analyze the physical mechanisms underlying the directional emission that also comes with an emission rate enhancement, and find a surprising robustness against perturbations of the source emitter location. This makes the structures highly interesting for actual nano-fabrication. We believe that optimized, all-dielectric silicon nano-antennas have high potential for genuine breakthroughs in a multitude of applications in nanophotonics and quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2309_07547
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Directional silicon nano-antennas for quantum emitter control designed by evolutionary optimization
Hernandez, Romain
Wiecha, Peter R.
Poumirol, Jean-Marie
Agez, Gonzague
Arbouet, Arnaud
Ressier, Laurence
Paillard, Vincent
Cuche, Aurélien
Optics
Mesoscale and Nanoscale Physics
Computational Physics
We optimize silicon nano-antennas to enhance and steer the emission of local quantum sources. We combine global evolutionary optimization (EO) with frequency domain electrodynamical simulations, and compare design strategies based on resonant and non-resonant building blocks. Specifically, we investigate the performance of models with different degrees of freedom but comparable amount of available material. We find that simpler geometric models allow significantly faster convergence of the optimizer, which, expectedly, comes at the cost of a reduced optical performance. We finally analyze the physical mechanisms underlying the directional emission that also comes with an emission rate enhancement, and find a surprising robustness against perturbations of the source emitter location. This makes the structures highly interesting for actual nano-fabrication. We believe that optimized, all-dielectric silicon nano-antennas have high potential for genuine breakthroughs in a multitude of applications in nanophotonics and quantum technologies.
title Directional silicon nano-antennas for quantum emitter control designed by evolutionary optimization
topic Optics
Mesoscale and Nanoscale Physics
Computational Physics
url https://arxiv.org/abs/2309.07547