Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory

Holographic memory is a strong candidate for next-generation optical storage, featuring high recording densities and data transfer rates, and magnetic hologram memory using a magnetic garnet, as the recording material is expected to be used as a rewritable and stable storage technology. However, the...

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Main Authors: Yuichi Nakamura, Pang Boey Lim, Taichi Goto, Hironaga Uchida, Mitsuteru Inoue
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/9/1738
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spelling doaj-da0801d287414c719070009211e98e9d2020-11-25T00:40:29ZengMDPI AGApplied Sciences2076-34172019-04-0199173810.3390/app9091738app9091738Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram MemoryYuichi Nakamura0Pang Boey Lim1Taichi Goto2Hironaga Uchida3Mitsuteru Inoue4Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Tempaku-cho, Toyohashi, Aichi 441-8580, JapanDepartment of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Tempaku-cho, Toyohashi, Aichi 441-8580, JapanDepartment of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Tempaku-cho, Toyohashi, Aichi 441-8580, JapanDepartment of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Tempaku-cho, Toyohashi, Aichi 441-8580, JapanDepartment of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Tempaku-cho, Toyohashi, Aichi 441-8580, JapanHolographic memory is a strong candidate for next-generation optical storage, featuring high recording densities and data transfer rates, and magnetic hologram memory using a magnetic garnet, as the recording material is expected to be used as a rewritable and stable storage technology. However, the diffraction efficiency of magnetic holography depending on the Faraday rotation angle is insufficiently high for actual storage devices. To increase the diffraction efficiency, it is important to record deep magnetic fringes, whereas it is necessary to suppress the merging of fringes owing to heat diffusion near the medium surface. In this work, we investigated the recording process of magnetic holograms in detail with experiments and numerical simulations, and developed a multilayer media with transparent heat dissipation layers to record deep and clear magnetic holograms by controlling the heat diffusion generated during the thermomagnetic recording process. To suppress lateral heat diffusion near the medium surface, we designed and fabricated a multilayer magnetic medium in which the recording magnetic layers are discrete in a film, approximately 12-µm thick. This medium exhibited diffraction efficiency higher than that of the single-layer medium, and error-free recording and reconstruction were achieved using the magnetic assist technique.https://www.mdpi.com/2076-3417/9/9/1738magnetic hologrammagneto-optical effectthermomagnetic recordingmultilayer recording media
collection DOAJ
language English
format Article
sources DOAJ
author Yuichi Nakamura
Pang Boey Lim
Taichi Goto
Hironaga Uchida
Mitsuteru Inoue
spellingShingle Yuichi Nakamura
Pang Boey Lim
Taichi Goto
Hironaga Uchida
Mitsuteru Inoue
Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
Applied Sciences
magnetic hologram
magneto-optical effect
thermomagnetic recording
multilayer recording media
author_facet Yuichi Nakamura
Pang Boey Lim
Taichi Goto
Hironaga Uchida
Mitsuteru Inoue
author_sort Yuichi Nakamura
title Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
title_short Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
title_full Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
title_fullStr Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
title_full_unstemmed Development of Heat Dissipation Multilayer Media for Volumetric Magnetic Hologram Memory
title_sort development of heat dissipation multilayer media for volumetric magnetic hologram memory
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-04-01
description Holographic memory is a strong candidate for next-generation optical storage, featuring high recording densities and data transfer rates, and magnetic hologram memory using a magnetic garnet, as the recording material is expected to be used as a rewritable and stable storage technology. However, the diffraction efficiency of magnetic holography depending on the Faraday rotation angle is insufficiently high for actual storage devices. To increase the diffraction efficiency, it is important to record deep magnetic fringes, whereas it is necessary to suppress the merging of fringes owing to heat diffusion near the medium surface. In this work, we investigated the recording process of magnetic holograms in detail with experiments and numerical simulations, and developed a multilayer media with transparent heat dissipation layers to record deep and clear magnetic holograms by controlling the heat diffusion generated during the thermomagnetic recording process. To suppress lateral heat diffusion near the medium surface, we designed and fabricated a multilayer magnetic medium in which the recording magnetic layers are discrete in a film, approximately 12-µm thick. This medium exhibited diffraction efficiency higher than that of the single-layer medium, and error-free recording and reconstruction were achieved using the magnetic assist technique.
topic magnetic hologram
magneto-optical effect
thermomagnetic recording
multilayer recording media
url https://www.mdpi.com/2076-3417/9/9/1738
work_keys_str_mv AT yuichinakamura developmentofheatdissipationmultilayermediaforvolumetricmagnetichologrammemory
AT pangboeylim developmentofheatdissipationmultilayermediaforvolumetricmagnetichologrammemory
AT taichigoto developmentofheatdissipationmultilayermediaforvolumetricmagnetichologrammemory
AT hironagauchida developmentofheatdissipationmultilayermediaforvolumetricmagnetichologrammemory
AT mitsuteruinoue developmentofheatdissipationmultilayermediaforvolumetricmagnetichologrammemory
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