Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons

Vanadium dioxide (VO2) is a promising phase-change material (PCM) in controlling radiative heat transfer because of the large permittivity contrast between the phases and the moderate metal-insulator transition temperature of 340 K. Widely adopted bare VO2 films on a dielectric substrate permit more...

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Main Authors: Kota Ito, Toshio Watari, Kazutaka Nishikawa, Hiroshi Yoshimoto, Hideo Iizuka
Format: Article
Language:English
Published: AIP Publishing LLC 2018-08-01
Series:APL Photonics
Online Access:http://dx.doi.org/10.1063/1.5025947
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spelling doaj-40f5148ca4c54e41b157fbe1abd1a44b2020-11-24T21:30:06ZengAIP Publishing LLCAPL Photonics2378-09672018-08-0138086101086101-1110.1063/1.5025947001807APPInverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmonsKota Ito0Toshio Watari1Kazutaka Nishikawa2Hiroshi Yoshimoto3Hideo Iizuka4Toyota Central Research and Development Labs, Nagakute, Aichi 480-1192, JapanToyota Motor Corporation, Toyota, Aich 471-8571, JapanToyota Central Research and Development Labs, Nagakute, Aichi 480-1192, JapanToyota Motor Corporation, Toyota, Aich 471-8571, JapanToyota Research Institute of North America, Toyota Motor North America, Ann Arbor, Michigan 48105, USAVanadium dioxide (VO2) is a promising phase-change material (PCM) in controlling radiative heat transfer because of the large permittivity contrast between the phases and the moderate metal-insulator transition temperature of 340 K. Widely adopted bare VO2 films on a dielectric substrate permit more radiative heat in the insulating state compared to that in the metallic state. In this paper, we present PCM-insulator-metal metasurfaces that invert the thermal radiative contrast, which means that the radiative heat flux is more promoted in the metallic state. The metasurfaces exhibit similar but broader resonance compared to conventional metal-insulator-metal metamaterials based on localized gap-plasmons when VO2 is in the metallic state. The broad resonance facilitates to maximize the radiative thermal exchange and is explained by the damping of the gap-plasmon mode dominated by the optical loss of VO2. The measured electromagnetic response of the fabricated metasurfaces agrees well with numerical simulations, and it also demonstrates that the resonant wavelength is tuned by the temperature. High emission or absorption contrast at a specific temperature is numerically obtained by geometrical optimization albeit lossy amorphous silicon or alumina is employed as the insulating layer to satisfy the fabrication requirement. We believe that the presented metasurface design contributes to intelligent thermal management systems with flexibility.http://dx.doi.org/10.1063/1.5025947
collection DOAJ
language English
format Article
sources DOAJ
author Kota Ito
Toshio Watari
Kazutaka Nishikawa
Hiroshi Yoshimoto
Hideo Iizuka
spellingShingle Kota Ito
Toshio Watari
Kazutaka Nishikawa
Hiroshi Yoshimoto
Hideo Iizuka
Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
APL Photonics
author_facet Kota Ito
Toshio Watari
Kazutaka Nishikawa
Hiroshi Yoshimoto
Hideo Iizuka
author_sort Kota Ito
title Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
title_short Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
title_full Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
title_fullStr Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
title_full_unstemmed Inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
title_sort inverting the thermal radiative contrast of vanadium dioxide by metasurfaces based on localized gap-plasmons
publisher AIP Publishing LLC
series APL Photonics
issn 2378-0967
publishDate 2018-08-01
description Vanadium dioxide (VO2) is a promising phase-change material (PCM) in controlling radiative heat transfer because of the large permittivity contrast between the phases and the moderate metal-insulator transition temperature of 340 K. Widely adopted bare VO2 films on a dielectric substrate permit more radiative heat in the insulating state compared to that in the metallic state. In this paper, we present PCM-insulator-metal metasurfaces that invert the thermal radiative contrast, which means that the radiative heat flux is more promoted in the metallic state. The metasurfaces exhibit similar but broader resonance compared to conventional metal-insulator-metal metamaterials based on localized gap-plasmons when VO2 is in the metallic state. The broad resonance facilitates to maximize the radiative thermal exchange and is explained by the damping of the gap-plasmon mode dominated by the optical loss of VO2. The measured electromagnetic response of the fabricated metasurfaces agrees well with numerical simulations, and it also demonstrates that the resonant wavelength is tuned by the temperature. High emission or absorption contrast at a specific temperature is numerically obtained by geometrical optimization albeit lossy amorphous silicon or alumina is employed as the insulating layer to satisfy the fabrication requirement. We believe that the presented metasurface design contributes to intelligent thermal management systems with flexibility.
url http://dx.doi.org/10.1063/1.5025947
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