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ID 66722
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ISOBE, Kazuma Department of Advanced Mechanics, Graduate School of Natural Science and Technology, Okayama University ORCID Kaken ID researchmap
YAMADA, Yutaka Department of Advanced Mechanics, Graduate School of Natural Science and Technology, Okayama University Kaken ID researchmap
HORIBE, Akihiko Department of Advanced Mechanics, Graduate School of Natural Science and Technology, Okayama University Kaken ID researchmap
HANAMURA, Katsunori School of Engineering, Department of Mechanical Engineering, Tokyo Institute of Technology
Abstract
A conventional metal–insulator nanograting has the potential to transmit near-infrared thermal radiation because an electromagnetic wave is resonated in the grating structure. Surface plasmon polaritons (SPPs) take place at the interface between the metal and the insulator with boundaries at both ends. Physicists formulated the resonance frequency of the grating from the Fabry–Pérot interference between the grating thickness and the wavelength of SPPs in a short-range coupled mode. On the other hand, engineering researchers often use a lumped-element model assuming a resonant circuit consisting of an inductance of metal and a capacitance of metal-insulator-metal grating structure. Furthermore, they have considered that the resonant circuit excites a strong magnetic field independent of SPPs. This study compares each physical model and numerical simulation results, then clearly shows that all resonance frequencies and features of the circuit resonance can be described by the Fabry–Pérot interference of the SPPs in short-range coupled mode. Moreover, the estimated resonance frequencies obviously correspond to the local maxima of the transmittance of the nanograting with the various thicknesses and pitches. In this case, a strong magnetic field can be observed in the insulator layer as if it might be an isolated magnetic quantum. However, since materials show no magnetism at near-infrared frequencies, the magnetic response appears due to the contribution of SPPs.
Keywords
Surface plasmon polariton
Circuit resonance
Magnetic polariton
Lumped-element model
Fabry–Pérot interference
Published Date
2024
Publication Title
Journal of Thermal Science and Technology
Volume
volume19
Issue
issue1
Publisher
The Japan Society of Mechanical Engineers and The Heat Transfer Society of Japan
Start Page
23-00531
ISSN
1880-5566
Content Type
Journal Article
language
English
OAI-PMH Set
岡山大学
Copyright Holders
© 2024 by The Japan Society of Mechanical Engineers and The Heat Transfer Society of Japan
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publisher
DOI
Web of Science KeyUT
Related Url
isVersionOf https://doi.org/10.1299/jtst.23-00531
License
https://creativecommons.org/licenses/by-nc-nd/4.0/
Funder Name
Japan Society for the Promotion of Science
助成番号
22K14192