Modeling Atomistically Assembled Diffractive Optics in Solids

Fuente: arXiv
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Main Authors: Kling, Trevor, Na, Dong-yeop, Hosseini, Mahdi
Format: Preprint
Published: 2024
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author Kling, Trevor
Na, Dong-yeop
Hosseini, Mahdi
author_facet Kling, Trevor
Na, Dong-yeop
Hosseini, Mahdi
contents We develop a model describing long-range atom-atom interactions in a two-dimensional periodic or a-periodic lattice of optical centers considering spectral and spatial broadening effects. Using both analytical and numerical Green's function techniques, we develop a mathematical framework to describe effective atom-atom interactions and collective behaviors in the presence of disorder. This framework is applicable to a broad range of quantum systems with arbitrary lattice geometries, including cold atoms, solid-state photonics, and superconducting platforms. The model can be used, for example, to scalably design quantum optical elements, e.g. a quantum lens, harnessing atomistic engineering (e.g. via ion implantation) of collective interactions in materials to enhance quantum properties at scale.
format Preprint
id arxiv_https___arxiv_org_abs_2408_14651
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Modeling Atomistically Assembled Diffractive Optics in Solids
Kling, Trevor
Na, Dong-yeop
Hosseini, Mahdi
Optics
Quantum Physics
We develop a model describing long-range atom-atom interactions in a two-dimensional periodic or a-periodic lattice of optical centers considering spectral and spatial broadening effects. Using both analytical and numerical Green's function techniques, we develop a mathematical framework to describe effective atom-atom interactions and collective behaviors in the presence of disorder. This framework is applicable to a broad range of quantum systems with arbitrary lattice geometries, including cold atoms, solid-state photonics, and superconducting platforms. The model can be used, for example, to scalably design quantum optical elements, e.g. a quantum lens, harnessing atomistic engineering (e.g. via ion implantation) of collective interactions in materials to enhance quantum properties at scale.
title Modeling Atomistically Assembled Diffractive Optics in Solids
topic Optics
Quantum Physics
url https://arxiv.org/abs/2408.14651