Near-field Strong Coupling and Entanglement of Quantum Emitters for Room-temperature Quantum Technologies

Fuente: arXiv
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Main Authors: Clarke, Daniel D. A., Hess, Ortwin
Format: Preprint
Published: 2024
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author Clarke, Daniel D. A.
Hess, Ortwin
author_facet Clarke, Daniel D. A.
Hess, Ortwin
contents In recent years, quantum nanophotonics has forged a rich nexus of nanotechnology with photonic quantum information processing, offering remarkable prospects for advancing quantum technologies beyond their current technical limits in terms of physical compactness, energy efficiency, operation speed, temperature robustness and scalability. In this perspective, we highlight a number of recent studies that reveal the especially compelling potential of nanoplasmonic cavity quantum electrodynamics for driving quantum technologies down to nanoscale spatial and ultrafast temporal regimes, whilst elevating them to ambient temperatures. Our perspective encompasses innovative proposals for quantum plasmonic biosensing, driving ultrafast single-photon emission and achieving near-field multipartite entanglement in the strong coupling regime, with a notable emphasis on the use of industry-grade devices. We conclude with an outlook emphasizing how the bespoke characteristics and functionalities of plasmonic devices are shaping contemporary research directives in ultrafast and room-temperature quantum nanotechnologies.
format Preprint
id arxiv_https___arxiv_org_abs_2406_15171
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Near-field Strong Coupling and Entanglement of Quantum Emitters for Room-temperature Quantum Technologies
Clarke, Daniel D. A.
Hess, Ortwin
Optics
Quantum Physics
In recent years, quantum nanophotonics has forged a rich nexus of nanotechnology with photonic quantum information processing, offering remarkable prospects for advancing quantum technologies beyond their current technical limits in terms of physical compactness, energy efficiency, operation speed, temperature robustness and scalability. In this perspective, we highlight a number of recent studies that reveal the especially compelling potential of nanoplasmonic cavity quantum electrodynamics for driving quantum technologies down to nanoscale spatial and ultrafast temporal regimes, whilst elevating them to ambient temperatures. Our perspective encompasses innovative proposals for quantum plasmonic biosensing, driving ultrafast single-photon emission and achieving near-field multipartite entanglement in the strong coupling regime, with a notable emphasis on the use of industry-grade devices. We conclude with an outlook emphasizing how the bespoke characteristics and functionalities of plasmonic devices are shaping contemporary research directives in ultrafast and room-temperature quantum nanotechnologies.
title Near-field Strong Coupling and Entanglement of Quantum Emitters for Room-temperature Quantum Technologies
topic Optics
Quantum Physics
url https://arxiv.org/abs/2406.15171