EP1568427A1

Production method of fine composite metal particles

Abstract

A fine composite metal particle comprising (a) an iron-based metal core comprising 1% or more and less than 50% by mass of at least one element selected from the group consisting of Al, As, Be, Cr, Ga, Ge, Mo, P, Sb, Si, Sn, Ti, V, W and Zn, and having a main structural phase of α-Fe, and (b) a coating layer mainly composed of carbon and/or boron nitride, the fine composite metal particles being obtained by reducing iron oxide powder.

EP1568427A1, drawing sheet 1
Sheet 1 of 16

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Projected expiry passed 4 October 2024, 2 years ago.

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16 claims: 10 independent, 6 dependent

  1. 1
    Fine composite metal particles comprising    an iron-based metal core (1) comprising 1 % or more and less than 50% by mass of at least one element selected from the group consisting of Al, As, Be, Cr, Ga, Ge, Mo, P, Sb, Si, Sn, Ti, V, W and Zn, and having a main structural phase of α-Fe, and    a coating layer (2) mainly composed of carbon and/or boron nitride,    said fine composite metal particles being obtained by reducing iron oxide powder.
  2. 3
    Nano-sized, spherical, composite metal particles each comprising    an iron-based metal core (1) comprising Co and/or Ni, and    a coating layer (2) having a thickness of 1 to 40 nm,    the mass ratios of Co/Fe and Ni/Fe being 0.3 to 0.82, and 0.01 to 0.5, respectively.
  3. 4
    Nano-sized, spherical, composite metal particles each comprising    an iron-based metal core (1) comprising Co and/or Ni, and    a coating layer (2) having a thickness of 1 to 40 nm,    a ratio of the intensity I (111) of a (111) peak of γ-Fe having a face-centered cubic crystal structure to the intensity I (110) of a (110) peak of α-Fe having a body-centered cubic crystal structure is 0.2 or less in an X-ray diffraction pattern.
  4. 5
    Fine composite metal particles each comprising    a metal core (1) comprising a magnetic metal as a main component and having an average particle size of 10 µm or less, and    a multilayer coating (2, 3) of two or more different inorganic materials.
  5. 8
    The particles of any of claims 5 to 7, wherein an inorganic layer (3) outside said innermost inorganic layer (2) is substantially composed of gold, or silicon oxide, preferably having a thickness of 400 nm or less.
  6. 9
    The particles of any of claims 5 to 7, wherein said outside inorganic layer (3)    is coated with a resin, which is preferably coated with a silicon oxide layer, and/or    has at least one functional group selected from the group consisting of -NH 2 , -OH and -COOH on its surface.
  7. 11
    Magnetic beads for extracting biosubstances comprising the fine composite metal particles of any of claims 8 to 10.
  8. 12
    A method for producing fine composite metal particles comprising the steps of    mixing oxide powder of a magnetic metal with at least one of boron-containing powder and carbon powder to provide a mixed powder,    heat-treating said mixed powder in a non-oxidizing atmosphere to produce fine metal particles each coated with a layer (2) based on carbon and/or boron nitride, and    coating the resultant coated fine metal particles with an inorganic material.
  9. 13
    A method for producing fine composite metal particles comprising the steps of    mixing oxide powder of a magnetic metal with powder containing at least one element selected from the group consisting of Si, V, Ti, Al, Nb, Zr and Cr to provide a mixed powder,    heat-treating said mixed powder in a non-oxidizing atmosphere to produce fine metal particles coated with a layer (2) based on at least one of said elements, and    coating the resultant coated fine metal particles with an inorganic material.
  10. 14
    A method for producing fine composite metal particles comprising the steps of    mixing oxide powder of a magnetic metal, at least one of boron-containing powder and carbon powder, and powder containing at least one element selected from the group consisting of Al, As, Be, Cr, Ga, Ge, Mo, P, Sb, Si, Sn, Ti, V, W and Zn to provide a mixed powder,    heat-treating said mixed powder in a non-oxidizing atmosphere to produce fine metal particles comprising at least one of said elements coated with a layer (2) comprising carbon and/or boron nitride, and    coating the resultant coated fine metal particles with an inorganic material.
  11. 15
    The method of any of claims 12 to 14, wherein    a layer (3) of said inorganic material is substantially composed of silicon oxide formed by hydrolyzing silicon alkoxide, and    said silicon oxide layer (3) is preferably formed from silicon alkoxide, water, a catalyst and an electrolyte in an alcohol solvent.