ジャーナル論文 Enhancement of damping constant in Nd-doped L10-FePt at elevated temperarures for HAMR
Aiko Sakoguchi (author) (この著者で検索)
National Institute for Materials Science Research Center for Magnetic and Spintronic Materials/Magnetic Recording Materials Group
;
Yuta Sasaki (author) (この著者で検索)
ORCID https://orcid.org/0000-0002-9192-4799
National Institute for Materials Science Research Center for Magnetic and Spintronic Materials
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Daisuke Ogawa (author) (この著者で検索)
ORCID https://orcid.org/0000-0002-4373-6435
National Institute for Materials Science Research Center for Magnetic and Spintronic Materials/Magnetic Recording Materials Group
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Jun Uzuhashi (author) (この著者で検索)
ORCID https://orcid.org/0000-0003-2023-8158
National Institute for Materials Science Research Center for Magnetic and Spintronic Materials/Digital Transformation Initiative Center for Magnetic Materials/Materials Characterization Group
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Hirofumi Suto (author) (この著者で検索)
ORCID https://orcid.org/0000-0003-4387-5862
National Institute for Materials Science Research Center for Materials Nanoarchitectonics (MANA)/Semiconductor Materials Collaborative Hub
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Yukiko K. Takahashi (author) (この著者で検索)
ORCID https://orcid.org/0000-0001-9197-7236
National Institute for Materials Science External Collaboration Division/WD-NIMS Center for Storage Frontier
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引用
Aiko Sakoguchi, Yuta Sasaki, Daisuke Ogawa, Jun Uzuhashi, Hirofumi Suto, Yukiko K. Takahashi. Enhancement of damping constant in Nd-doped L10-FePt at elevated temperarures for HAMR. ACTA MATERIALIA. 2026, 321 (), 122826. https://doi.org/10.1016/j.actamat.2026.122826

説明:

(abstract)

Hard disk drives (HDDs) remain the primary large-capacity storage solution for data centers handling petabyte-scale AI data. Heat-assisted magnetic recording (HAMR) enables higher recording density by heating the recording layer near its Curie temperature (Tc) during writing. A sufficiently large Gilbert damping constant (α) at elevated temperatures is critical to suppress thermally driven back-switching and improve recording reliability.
This study investigates Nd-doped L1₀-FePt continuous thin films with Nd content ranging from 0.0 to 4.1 at.%. Microstructural analysis by XRD, STEM, and APT revealed that Nd is completely rejected from the FePt lattice and instead segregates into Fe-deficient void regions. Despite this, small amounts of Nd doping enhanced the anisotropy field (μ₀Hk), attributed to localized spin-orbit coupling (SOC) enhancement at FePt/Nd interfaces.
Magnetization dynamics measured by TRMOKE from room temperature to near Tc showed that effective α near Tc increased from 0.048 (undoped) to 0.066 (4.1 at.% Nd), providing the first experimental demonstration of α enhancement through rare-earth doping in FePt. This enhancement is attributed to interfacial SOC effects, consistent with mechanisms reported in NiFe/rare-earth bilayer systems. These findings demonstrate that rare-earth doping can effectively modulate α in FePt-based HAMR media.

権利情報:

キーワード: FePt, Hard disk drives, Time resolved magneto optical Kerr effect, magnetization dynamics, perpendicular magnetic anisotropy, Heat-assisted magnetic recording

刊行年月日: 2026-09-29

出版者: Elsevier BV

掲載誌:

  • ACTA MATERIALIA (ISSN: 13596454) vol. 321 122826

研究助成金:

  • Government of Japan Ministry of Education Culture Sports Science and Technology JPMXS0320230032
  • Japan Society for the Promotion of Science 26K21737
  • Advanced Storage Research Consortium
  • Japan Science and Technology Agency JPMJCR22C3

原稿種別: 出版者版 (Version of record)

MDR DOI:

公開URL: https://doi.org/10.1016/j.actamat.2026.122826

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更新時刻: 2026-10-09 13:07:09 +0900

MDRでの公開時刻: 2026-10-09 14:30:58 +0900

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