Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials

Narrow-band invisibility in an otherwise opaque medium has been achieved by electromagnetically induced transparency (EIT) in atomic systems. The quantum EIT behavior can be classically mimicked by specially engineered metamaterials via carefully controlled interference with a “dark mode.” However,...

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Main Authors: Daimeng Zhang, Melissa Trepanier, Oleg Mukhanov, Steven M. Anlage
Format: Article
Language:English
Published: American Physical Society 2015-12-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.5.041045
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spelling doaj-f65b115ee418489dab7077cee661c75d2020-11-24T23:25:30ZengAmerican Physical SocietyPhysical Review X2160-33082015-12-015404104510.1103/PhysRevX.5.041045Tunable Broadband Transparency of Macroscopic Quantum Superconducting MetamaterialsDaimeng ZhangMelissa TrepanierOleg MukhanovSteven M. AnlageNarrow-band invisibility in an otherwise opaque medium has been achieved by electromagnetically induced transparency (EIT) in atomic systems. The quantum EIT behavior can be classically mimicked by specially engineered metamaterials via carefully controlled interference with a “dark mode.” However, the narrow transparency window limits the potential applications that require a tunable wideband transparent performance. Here, we present a macroscopic quantum superconducting metamaterial with manipulative self-induced broadband transparency due to a qualitatively novel nonlinear mechanism that is different from conventional EIT or its classical analogs. A near-complete disappearance of resonant absorption under a range of applied rf flux is observed experimentally and explained theoretically. The transparency comes from the intrinsic bistability of the meta-atoms and can be tuned on and off easily by altering rf and dc magnetic fields, temperature, and history. Hysteretic in situ 100% tunability of transparency paves the way for autocloaking metamaterials, intensity-dependent filters, and fast-tunable power limiters.http://doi.org/10.1103/PhysRevX.5.041045
collection DOAJ
language English
format Article
sources DOAJ
author Daimeng Zhang
Melissa Trepanier
Oleg Mukhanov
Steven M. Anlage
spellingShingle Daimeng Zhang
Melissa Trepanier
Oleg Mukhanov
Steven M. Anlage
Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
Physical Review X
author_facet Daimeng Zhang
Melissa Trepanier
Oleg Mukhanov
Steven M. Anlage
author_sort Daimeng Zhang
title Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
title_short Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
title_full Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
title_fullStr Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
title_full_unstemmed Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials
title_sort tunable broadband transparency of macroscopic quantum superconducting metamaterials
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2015-12-01
description Narrow-band invisibility in an otherwise opaque medium has been achieved by electromagnetically induced transparency (EIT) in atomic systems. The quantum EIT behavior can be classically mimicked by specially engineered metamaterials via carefully controlled interference with a “dark mode.” However, the narrow transparency window limits the potential applications that require a tunable wideband transparent performance. Here, we present a macroscopic quantum superconducting metamaterial with manipulative self-induced broadband transparency due to a qualitatively novel nonlinear mechanism that is different from conventional EIT or its classical analogs. A near-complete disappearance of resonant absorption under a range of applied rf flux is observed experimentally and explained theoretically. The transparency comes from the intrinsic bistability of the meta-atoms and can be tuned on and off easily by altering rf and dc magnetic fields, temperature, and history. Hysteretic in situ 100% tunability of transparency paves the way for autocloaking metamaterials, intensity-dependent filters, and fast-tunable power limiters.
url http://doi.org/10.1103/PhysRevX.5.041045
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