Synthesis of Hexagonal Close-Packed Cobalt Nanoparticles From Thermolysis of Cobalt Carbonyl

被引:0
|
作者
Takahashi, Kyohei [1 ]
Ito, Hiroshi [1 ]
Kanada, Isao [1 ]
Matsumoto, Hiroyuki [1 ]
机构
[1] TDK Corp, Mat Res Ctr, Technol & IP HQ, Narita 2868588, Japan
关键词
Soft magnetic materials; synthesis; nanoparticles; hexagonal close-packed cobalt; MAGNETIC-ANISOTROPY; PARTICLE-SIZE;
D O I
10.1109/LMAG.2023.3316608
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Magnetic materials with low magnetic loss are required to realize both a high-frequency support and a miniaturization of radio frequency components. Hexagonal close-packed cobalt (hcp-Co) nanoparticles are considered suitable for high frequencies due to their nanoparticle morphology and high magnetocrystalline anisotropy. However, the face-centered cubic (fcc) or the epsilon phase with low magnetocrystalline anisotropy is fabricated in the synthetization of Co nanoparticles with a size of less than a few hundred nanometers. In this letter, we investigate the synthesis of Co nanoparticles by the thermolysis of dicobalt octacarbonyl at various temperatures for obtaining Co particles with a single hcp phase. Although Co nanoparticles synthesized at 453 K exhibited a mixture of hcp and fcc phases with an hcp phase ratio of 25%, Co nanoparticles almost achieved the hcp phase ratio of 100% by decreasing the thermolysis temperature to 333 K or lower. Furthermore, we evaluated the permeability spectrum of the composite with Co particles of 10 vol% dispersed in polystyrene. Although the real part of the permeability in the composite containing Co nanoparticles with the mixed phase of fcc and hcp monotonously decreased with frequency, the composite contained Co nanoparticles with a single phase with a suitable constant value up to 3 GHz for high-frequency applications.
引用
收藏
页数:4
相关论文
共 50 条
  • [21] COUPLING COEFFICIENTS FOR HEXAGONAL CLOSE-PACKED SOLIDS
    CHANDRA, R
    GUPTA, NP
    JOURNAL OF CHEMICAL PHYSICS, 1975, 62 (02): : 696 - 699
  • [22] Dislocation dynamics in hexagonal close-packed crystals
    Aubry, S.
    Rhee, M.
    Hommes, G.
    Bulatov, V. V.
    Arsenlis, A.
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2016, 94 : 105 - 126
  • [23] Filling in the hexagonal close-packed unit cell
    Rittenhouse, RC
    Soper, LM
    Rittenhouse, JL
    JOURNAL OF CHEMICAL EDUCATION, 2006, 83 (01) : 175 - 175
  • [24] SEGREGATIONS IN DISORDERED CLOSE-PACKED STRUCTURES AND RELATED DIFFUSE-SCATTERING IN COBALT AND COBALT ALLOYS .2. APPLICATION TO COBALT
    BABKEVICH, AY
    FREY, F
    KAHLERT, H
    PHILOSOPHICAL MAGAZINE A-PHYSICS OF CONDENSED MATTER STRUCTURE DEFECTS AND MECHANICAL PROPERTIES, 1995, 72 (05): : 1341 - 1349
  • [25] Hexagonal close-packed copper: Theory and experiment
    Jona, F
    Ji, XZ
    Marcus, PM
    PHYSICAL REVIEW B, 2003, 68 (17):
  • [26] GRUNEISEN PARAMETERS OF A HEXAGONAL CLOSE-PACKED LATTICE
    BATANA, A
    DEANDRADE, CF
    GOMEZ, I
    COMPUTERS & CHEMISTRY, 1991, 15 (03): : 179 - 183
  • [27] CLOSE-PACKED HEXAGONAL ALLOYS OF IRON AND NITROGEN
    HUMEROTHERY, W
    PHILOSOPHICAL MAGAZINE, 1962, 7 (83): : 1955 - &
  • [28] THE CELLULAR METHOD FOR CLOSE-PACKED HEXAGONAL TITANIUM
    SCHIFF, B
    PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON SECTION A, 1956, 69 (02): : 185 - 186
  • [29] Rheology of Hexagonal Close-Packed (hcp) Iron
    Nishihara, Yu
    Doi, Shunta
    Tsujino, Noriyoshi
    Yamazaki, Daisuke
    Matsukage, Kyoko N.
    Tsubokawa, Yumiko
    Yoshino, Takashi
    Thomson, Andrew R.
    Higo, Yuji
    Tange, Yoshinori
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2023, 128 (06)